Course content
Engineering remains at the heart of the UK economy and the demand for skilled and qualified engineers has never been higher.
The modules in this programme aim to enable you to:
- Become a flexible engineering graduate, equipped to work effectively within electrical and electronic engineering methodologies, design and management.
- Practice specialist skills to demonstrate an awareness of the context within which you work and take responsibility for your own personal and professional development.
- Gain awareness of the environmental, economic, social and sustainability issues that are an integral part of the professional engineer’s role. This includes topics related to electrical and electronic systems, with a focus on electrical machines, digital signals and microprocessor technologies.
- Work well in multi-disciplinary groups, with experience of communication, organisation, planning and logistics.
Years one and two provide core fundamental knowledge of engineering principles, as well as applying mathematics to engineering problems. Your three and four are spent applying your knowledge to engineering problems.
You will complete a Technical Report and Presentation in the final year: an opportunity to apply your knowledge and skills to devise an engineering solution at a professional level in an area of engineering study that interests you.
Please note that the module information displayed here is subject to change.
75 credits of compulsory and non-condonable modules.
Compulsory modules
| Code | Module | Credits |
|---|---|---|
| Compulsory 1 | ||
| Mathematics for Engineers | 15 | |
| Fundamental and Applied Materials | 30 | |
| Fundamentals of Electronics | 15 | |
| Project Management | 15 | |
ENG1201DA: Mathematics for Engineers
Learning to think and express yourself in mathematical terms is an essential part of your becoming an engineer who is able to describe engineering processes and systems to solve problems. This module will help you develop the mathematical skills necessary to complete your engineering degree programme. In particular, there will be a strong emphasis on the direct application of mathematics to industrial engineering problems. Furthermore, you will learn to use programming (Python) as a means to model mathematical problems and implement computational solutions.
This module will cover topics which are fundamental to engineers in their professional careers, focussing on the direct application of mathematics to industrial engineering problems. You will develop a knowledge and understanding of mathematical principles necessary to underpin your education in a number of engineering disciplines, and to enable you to apply mathematical methods, tools and notations proficiently in the analysis and solution of engineering problems. Furthermore, this module will improve your understanding of engineering principles and the ability to apply them to analyse key engineering processes. It will also enhance your ability to identify, classify, and describe the performance of systems and components through the use of analytical methods and modelling techniques. Finally, it will increase your understanding and ability to apply a systems approach to engineering problems.
ENS1001DA: Fundamental and Applied Materials
You will learn how to relate basic theory to current technology such as state-of-the-art materials and rapid manufacture techniques. Furthermore, the module will introduce you to the fundamental material solids that engineers use, such as metals, polymers, composites, glasses and ceramics. You will also have the chance to explore why materials behave the way they do, how they differ and what we can do to manipulate them to create products. Moreover, you will take part in lab work to make and test different kinds of materials, and study common manufacturing techniques by practically trying and testing them.
This module is designed to help you develop an awareness of principal engineering materials, their fabrication and technical/economic/environmental considerations. By the end of it, you will be able to explain how to manufacture any single component, the cheapest and best method of making it, what the properties of that material are, how they behave and how they arise. The knowledge you acquire in this module will stand you in good stead in future study.
The following Engineering Council AHEP4 Learning Outcomes are taught and assessed on this module:
C.4 Select and evaluate technical literature and other sources of information to address complex problems.
C.12. Use practical laboratory and workshop skills to investigate complex problems
ENS1005DA: Fundamentals of Electronics
This module takes you into the world of Electronic engineering - a field that covers everything from radio to space flight. In this module, you will learn fundamental concepts of charge, current and potential, which are the foundation of electrical signals. You will be introduced to the basic electronic components and circuital laws for developing important DC and AC circuits for applications in power supplies, wireless power transfer, signal filters and sensor circuits.
As part of modern electronics, this module also gives you a foundation in semiconductors and semiconductor devices, both analogue and digital. You will learn the characteristics and operation of fundamental analogue devices such as diodes, transistors and operational amplifiers and their applications as amplifiers, in power supplies, device drivers, and sensor circuits (such as temperature and strain). In digital electronics, you will study Boolean algebra and fundamentals of logic gates for the design of combinational and sequential logic circuits and their practical applications in decision-making circuits and controllers for industrial applications, counters and timers.
ENS1015DA: Project Management
Successful management of complex engineering projects is a key responsibility of an engineer, requiring delivery on time, within budget, and to the required quality standards. This module develops your understanding of modern project management tools, techniques, and core management processes. You will learn to identify project-related risks and apply effective mitigation strategies. The module also emphasises stakeholder engagement and relationship management to enhance collaboration and communication. Additionally, you will explore quality assurance practices and apply project management methods, while considering sustainability and commercial factors that influence engineering decision-making and overall project success.
This module aims to develop your understanding of your role in successfully delivering engineering projects. You will build practical skills in planning and managing projects, including the effective use of tools to organise resources, schedules, and budgets. The module also introduces matrix management approaches to support team coordination, enabling you to assign roles and responsibilities based on competence. You will learn how to communicate project plans, delivery strategies, and progress clearly to stakeholders, while identifying potential risks and applying appropriate mitigation measures. This knowledge will prepare you to contribute effectively to achieving project objectives within engineering environments.
Please note that the module information displayed here is subject to change.
75 credits of compulsory and non-condonable modules.
Compulsory modules
| Code | Module | Credits |
|---|---|---|
| Compulsory 1 | ||
| Advanced Mathematics for Engineers | 15 | |
| Fundamental and Applied Mechanics | 30 | |
| Manufacturing Systems | 15 | |
| Advanced Electronics | 15 | |
ENG1205DA: Advanced Mathematics for Engineers
Learning to think and express yourself in mathematical terms is an essential part of your becoming an engineer who is able to describe engineering processes and systems to solve problems. This module will help you enhance your learning from ECM1201 Foundation Mathematics for Engineers and further develop the mathematical skills necessary to complete your engineering degree programme.
In particular, there will be a strong emphasis on the direct application of mathematics to engineering problems.
This module will cover topics which are fundamental to engineers in their professional careers, focussing on the direct application of mathematics to engineering problems. You will continue to develop your knowledge and understanding of mathematical principles necessary to underpin your education in a number of engineering disciplines, and to enable you to apply mathematical methods, tools and notations proficiently in the analysis and solution of engineering problems.
ENS1003DA: Fundamental and Applied Mechanics
Without the careful measurement of static and hydrostatic forces, structures like the Hoover Dam or the Tamar bridge could not have been built. This examination of the static behaviour of solids and fluids, which underpins much of civil engineering and mechanical engineering design, is just one of the key areas you will explore on this module.
You will encounter fluid and solid static equations and principles, including tension and compression.? You will learn how to determine the forces, pressures and deformations in fluid scenarios and solid structures.? In a hands-on laboratory session, you will measure the force generated by a water jet, hitting different surfaces, and then illustrate your results in diagrams.
On completing this module, you will be familiar with the basics of fluid and solid principles. The knowledge and skills learnt will be applied to practical problems, such as determining the loading capacity of bridges, power-transmission shafts in cars, and turbines, a floating pontoon, planning for bridges, buildings, mixing fluids in chemical plants, designing transportation systems of fluids, and detecting the flaws or failures in fluid systems. You will have an excellent foundation in critical measurement techniques and be proficient in using a hydraulic bench, in this case, equipped with a pump and simple system to measure flow rate.
ENS2012DA: Manufacturing Systems
Manufacturing systems are a means of organising the efficient production of industrial goods. The purpose of this module is to give you an insight into modern manufacturing systems and their design and management, and to enable you to apply various tools and techniques to solve practical problems.
By the end of the module, you will have a good understanding of different types of manufacturing systems and their management including process planning, materials requirements planning, capacity requirements planning, manufacturing resources planning (MRP II), production scheduling, and production control. You will also have obtained a good understanding of basic approaches to systems design and analysis, including layout planning, cell formation, line balancing, and systems modelling.
In addition to enhancing your understanding of manufacturing systems, this module teaches you practical skills, such as calculating economic batch quantities in purchasing and manufacturing. This will include calculations with price break points and multi-product manufacture. Furthermore, you will acquire knowledge of batch reordering methods, lead times and stock-out penalties, find out how to calculate optimum re-order levels, and learn how to deal with uncertainty in demand for products.
ENS2037DA: Advanced Electronics
Communications and networking technologies are rapidly evolving and have revolutionised the ways in which we socialise and network in business. This module gives you the chance to gain in-depth knowledge of these technologies and the ways in which they are used. You will learn all about protocols - the set of rules and instructions that computers and other devices follow when they communicate with each other across a network. Furthermore, you will gain invaluable practical experience using the Internet as a tool to assist with your own project, in which you will conduct a risk analysis and gain a deeper understanding of the impact that viruses can have on computer networks. You will also get the chance to see computer applications and protocols in action when lecturers give demonstrations using real-life examples.
The aim of this module is to equip you with the underlying theory and knowledge that underpins the fields of communications engineering and computer networking. You will learn about the nature and purpose of key telecommunication and networking principles, and apply these principles to addressing typical telecommunications and networking problems. You will demonstrate what you have learnt by critically evaluating a specified communication system and providing an appropriate technical solution to a problem associated with that system.
Please note that the module information displayed here is subject to change.
75 credits of compulsory modules.
Compulsory modules
| Code | Module | Credits |
|---|---|---|
| Compulsory 1 | ||
| Modelling of Engineering Systems | 15 | |
| Control Engineering | 15 | |
| Analogue and Digital Electronics Design | 15 | |
| Microcontroller Engineering | 15 | |
| Digital Signal Processing, Communication and Networks | 15 | |
ENS2013DA: Modelling of Engineering Systems
This module is designed to introduce second-year undergraduates to mathematical modelling techniques for engineering systems and their implementation using scientific computing (e.g., Python). The model builds on quantitative skills developed in the first-year module “Engineering Mathematics and Scientific Computing”, and puts them into practice by analysing, simulating and solving real engineering challenges in engineering systems such as mechanical systems, materials science, civil structures, fluid dynamics and electronic systems.
The module uses problem-based learning and uses case studies, so material will be introduced as needed in the context of engineering challenges.
1. To strengthen mathematical and computational skills for solving mathematical challenges arising in the modelling of engineering systems.
2. To acquire a large variety of analytical, numerical and mathematical techniques to be used for those engineering problems.
3. To build practical skills in translating engineering problem statements into mathematical models/questions, and then analysing, simulating and solving the problem by writing a software programme.
4. Understand the concept of analytical and numerical simulation models, and learn methods to validate and test your mathematical formulation and programme.
ENS2017DA: Control Engineering
The advancement of technology during the 20th century put control engineering on the map - and it still plays a critical role in everything from simple household washing machines to high-performance fighter aircraft. This module will give you a fundamental understanding of control engineering for single-input, single-output systems. In particular, you will analyse the fundamental concept of feedback and its impact on system dynamics. You will study the performance of closed-loop systems from a time-domain and frequency-domain perspective. Classical approaches to studying closed-loop systems will be introduced, including root-locus, Nyquist and Bode diagram methods.
The module will also describe a method for parameterising all stabilising controllers for a given plant model, and how this result can be used from a design perspective. The module will also introduce the fundamentals of proportional-integral-derivative (PID) control, which you will use to analyse and design control systems. The module will describe the concepts of gain and phase margins and the H-infinity norm for assessing the robustness of closed-loop systems to modelling uncertainty. The lectures are supported by computer laboratories for modelling and simulation of systems using the Control Engineering toolbox in MATLAB.
ENS2018DA: Analogue and Digital Electronics Design
Analogue and digital signals are found in all modern-day technology, from mobile phones to aircraft. This practical, hands-on module teaches you how to design, simulate, build and test real electronic systems. You will get the chance to design electronic circuits using basic analogue and digital circuit building blocks, including transistor amplifiers, integrated circuit operational amplifiers, filters, oscillators, counters, decoders, adders, latches and multiplexers. Furthermore, you will devise complex digital systems using programmable logic, such as Field Programmable Gate Arrays (FPGAs). Finally, you will design a range of practical circuits, simulating their performance in modern electronics simulators (Multisim and HDL) and exploring their hardware implementation, taking into account practical considerations such as component tolerances for circuit analysis and improvement. Throughout the module, lecturers will use a variety of case studies to aid your learning, including the design of amplifiers, filters and synchronous counters.
ENS2019DA: Microcontroller Engineering
A microcontroller is a small computer on a single integrated circuit. It is widely used in automatically controlled systems and devices such as appliances, automobiles, robots and mobile phones. In this module, you will be introduced to the fundamental principles of the design, operation and application of microcontrollers. This includes the architecture of microcontrollers and peripherals, such as various types of memories, analogue and digital input/output interfaces, serial communication modules, timers and interrupts. You will also learn how to program a microcontroller and gain extensive practical experience in designing an embedded system using a microcontroller.
This module aims to develop your understanding of the fundamental principles of the design, architecture and applications of a microcontroller. The laboratory sessions concentrate on the microcontroller development system, and you will get the chance to use programming languages to develop a range of microcontroller-based applications.
ENS2020DA: Digital Signal Processing, Communication and Networks
In our technologically oriented world, we need to process, interrogate and manipulate ever-increasing amounts of data from a wide variety of sources - such as video, audio and text, information databases, sensors and measurement systems, manufacturing equipment and robotic systems, etc. Today, such signal processing is invariably carried out using digital techniques, and so digital signal processing (DSP) has become an invaluable and integral part of a wide variety of fields ranging from consumer electronics to medicine to space exploration. In this module, you learn about the theory that lies behind the enormous popularity and power of DSP, as well as learning how to design and implement real-world DSP systems.
This module introduces you to the fundamental principles of digital signal processing, from both theoretical and practical viewpoints. You will get the chance to design digital signal processing systems for a range of important application areas, and to develop experimental digital signal processing applications using the Xilinx FPGA devices.
Please note that the module information displayed here is subject to change.
105 credits of compulsory modules and 30 credit optional
Compulsory modules
| Code | Module | Credits |
|---|---|---|
| Compulsory 1 | ||
| Economics and Company Finance | 15 | |
| Electromagnetics | 15 | |
| Electric Machines and Drives | 15 | |
| Integrated Student Project | 45 | |
| Power Electronics | 15 | |
ENS2036DA: Economics and Company Finance
This module will provide essential knowledge on economics and company finance. A special focus will be on managing high-growth, early-stage enterprises, especially those with innovation-based products and services. You will work in teams to develop skills and approaches necessary to become effective entrepreneurial leaders and managers. The topics include understanding business models, analysing key operational metrics, modelling cash flow and capital requirements, evaluating sources of financing, and managing the interplay between ownership and growth.
You will learn how to produce standard financial documents such as balance sheets, income statements, cash flow forecasts, and profit and loss statements. You will also learn how to do simple manufacturing and project costing.
This module will provide you with essential knowledge for all engineers, which will benefit you in your future career. You will gain basic training in standard financial documents: balance sheets, income statements, cash flow forecasts, and profit and loss statements. You will also learn how to do simple manufacturing and project costing. Financial management is explored, primarily in a project context.
ENS3027DA: Electromagnetics
A fundamental knowledge of electromagnetics is critical when pursuing a career in electronic engineering, providing you with an understanding of how signals travel in conductors and in space for applications in communications and antenna systems and a foundation for designing such systems. Beginning with the physical exploration of electromagnetics, you will study the origins of electric and magnetic fields, looking at the historical impact and application of electromagnetism.
Furthermore, you will investigate electrostatics and the electric field as well as magnetic forces and magnetostatics, applying this knowledge to real-world engineering problems; exploring theories, such as Maxwell's equations, you will develop essential problem-solving tools. Meanwhile, studying communication systems, you will consider elements such as the transmission of mobile phone signals and how radio works, incorporating Hertz's first measurement of radio waves. Assignments will cover practical exercises and open-ended problems to design your microwave waveguides or antenna systems with numerical models.
ENS3028DA: Electric Machines and Drives
Electric machines play an important role in industry, manufacturing, transportation and every aspect of our lives. This module provides a fundamental understanding of the main types of electric machines used in industry, including DC machines, induction machines, and synchronous machines. You will learn their principles of operation, equivalent circuits, control schemes and applications. This module will also cover semiconductor power electronics as important control devices and circuits in modern electric machine systems. The theory will be supported by a series of hands-on practical experiments to understand the operation and design of electric machines and power electronic circuits for real-world applications.
The aim of this module is to build a fundamental knowledge and understanding of the different types of electrical machines used in industry and their applications, and develop the ability to analyse their operation, characteristics, and performance. Through lectures, worksheets and hands-on practical sessions, you will acquire knowledge and skills for the analysis of electrical machines.
ENS3042DA: Integrated Student Project
In this module, you will develop your final individual report and prepare for the End Point Assessment (EPA), which marks the culmination of your apprenticeship. Upon confirmation from your employer that you have met the required Knowledge, Skills, and Behaviours (KSBs), you will progress through the EPA Gateway. This shall be after you have passed all the other modules on the programme and have met the necessary requirements.
This module requires you to complete both a project report and a portfolio of evidence that demonstrate the breadth of your KSBs. Your project will involve completing a project with a real business application that benefits your employer, meeting both the needs of their business and the relevance to your occupation and apprenticeship. This will be assessed through a report and a presentation, followed by a question-and-answer session.
Your portfolio of evidence should typically include 8 discrete pieces of evidence, mapped to the KSBs, which will be assessed in a Professional Discussion. These pieces of evidence shall come from your job responsibilities that shall align with the KSBs.
Optional modules
| Code | Module | Credits |
|---|---|---|
| Optional 1 | ||
| Machine Learning and AI | 15 | |
| Industry Specialism | 15 | |
| Mechatronics | 15 | |
ENS3026DA: Machine Learning and AI
Machine learning has emerged mainly from computer science and artificial intelligence, and draws on methods from a variety of related subjects including statistics, applied mathematics and more specialised fields, such as pattern recognition and neural computation. Applications are, for example, image and speech analysis, medical imaging, bioinformatics and exploratory data analysis in natural science and engineering. This module will provide you with a thorough grounding in the theory and application of machine learning, pattern recognition, classification, categorisation, and concept acquisition. Hence, it is particularly suitable for Computer Science, Mathematics and Engineering students and any students with some experience in probability and programming.
In this data-driven era, modern technologies are generating massive and high-dimensional datasets. This module aims to give you an understanding of computational methods used in modern data analysis.
ENS3038DA: Industry Specialism
Industry 4.0 or the “fourth industrial revolution” is the trend towards automation and data exchange in new manufacturing technologies - to deliver so called smart manufacturing. In this module you will be introduced to smart manufacturing, the mathematical tools behind it and how it can be applied to real world manufacturing problems. The teaching style in this module emphasises hands on learning. For example, you will learn how to manipulate a desktop robot to perform automated tasks. The module will build on mathematical and programming skills developed in the first year and modelling of engineering systems in the second year. Assessment in this module is 100% coursework and is based around 2 practical build activities built around real-world engineering problems.
ENS3039DA: Mechatronics
This module takes you into an interdisciplinary field of engineering dealing with the integration of mechanical, electric and electronic components coordinated by a controller. You will have the chance to learn a broad range of mechatronic systems and components, including analogue and digital circuits, sensors, actuators, energy harvesting and system integration, to gradually build your capability to design mechatronic systems. You will also have practical hands-on sessions to learn how to build real-world mechatronic systems, ranging from simple LED light flashing and DC motor control circuits to complex robot arm control and ultrasonic range detection.
Aimed at both electronic and mechanical engineers, this module combines major components of mechanical, electric and electronic engineering to explore how mechatronic systems are designed and built, right from learning the fundamental knowledge and concepts of major components in the systems, through to building mechatronic systems for real-world applications.
Accreditations
This programme launches in 2026 and has been developed in close partnership with industry and in consultation with our accrediting bodies. We have already successfully gained accreditation from industry professional bodies for established programmes across the Engineering department. Due to accreditation requirements for new programmes, we cannot seek accreditation until the first cohort is in their final year of the programme. Therefore, we intend to seek backdated accreditation from professional bodies when this requirement has been met, but it may not be guaranteed. If you require any further information, please contact the University directly.
Employer information
The Electrical & Electronic Engineering Apprenticeship has been developed in response to the growing industry demand for engineers with expertise in electrical and electronic systems. The Engineering Department has significant expertise in electronical engineering, particularly in digital electronics, digital signal processing, electric machines, telecommunication systems, electrical and power systems, and microprocessor and microcontroller technologies, making it well-placed to deliver this apprenticeship. This programme also fits within the strategic vision of Engineering 2030, which aims to develop cutting-edge programmes aligned with emerging technological advancements.
![]()
Top 10 in the UK for General Engineering
![]()
?6.5million investment in our teaching labs, workshop spaces and equipment
![]()
Apprentices earn a salary and pay zero tuition fees, meaning they’ll graduate debt-free and enhance their career
![]()
Top 2 in the UK for Electrical & Electronic Engineering
2nd in The Guardian University Guide 2026
Entry requirements
The Programme would be able to accept the common UK Qualifications and international equivalent.?
| Qualification | Typical offer | Required subjects |
|---|---|---|
| GCSE | 4 or C | Grade 4/C in GCSE English language and Mathematics |
| A-Level | ABB | GCE AL Maths grade B and another science* subject at grade B. Candidates may offer GCE AL Maths, Pure Maths or Further Maths. |
| IB | 32/655 | HL5 in Mathematics (Analysis and Approaches) and HL5 in another Science subject. Applicants achieving IB Maths SL7 plus IB HL5 in Physics will also be considered |
| BTEC Extended Diploma | DDM | Applicants studying one of the following BTEC Extended Diplomas will be considered: Applied Science; Aeronautical Engineering; Building Services; Engineering Construction and the Built Environment; Civil Engineering; Operations and Maintenance Engineering; Computer Engineering; Electrical/Electronic Engineering; Engineering; Manufacturing Engineering; Mechanical Engineering; Environmental Sustainability. |
| T-Level | Distinction | Required Subjects: Design and Development for Engineering and Manufacturing; Engineering; Manufacturing; Processing and Control; Maintenance, Installation and Repair for Engineering: Manufacturing only, Surveying and Planning for Construction.? |
NB General Studies is not included in any offer.
*GCE AL/AS science includes: Biology/Human Biology**; Chemistry; Computing; Design and Technology; Economics; Electronics; Environmental Studies; Geography; Geology; Life and Health Sciences; Physical Education; Physics; Psychology; Science (applied); Statistics.
**If more than one of these is taken they would only count as one ‘ science’ but could count as two A-levels towards our general requirements.
Additional entry requirements
In certain cases, recognising applicants’ prior skills and qualifications allows us to accelerate entry to our programme. Please contact us for further information.
Application through Accreditation of Prior Certificated Learning (APCL): Where an applicant can evidence a Level 3 or 4 qualifications (completed within the past five years) which can be accredited to demonstrate there is already an understanding of Electrical and Electronic Engineering principles.
Applications through Accreditation of Prior Experiential Learning (APEL): Applicants must have a minimum of two years engineering industry experience. They must also be in a role that supports the gathering of evidence required for the Electric and Electronic Engineering apprenticeship standard.
As an apprenticeship funding requirement, all apprentices aged 16-18 studying for a level 3 apprenticeship or higher are required to evidence achievement at level 2 in Mathematics and English before their gateway to endpoint assessment.
If the apprentice is aged 19+ when they begin their apprenticeship training, and they do not already hold a suitable equivalent qualification, English and / or maths is an optional part of the programme under the funding rules. However, L2 English remains a standard entry requirement for 91天堂色情片 programmes.
Find out more about how we support Functional Skills.
Applicants must also have a valid and eligible residency status to gain entry onto the apprenticeship – please see the for further information.
How to apply
- Vacancies are advertised by employers and are often promoted through our current vacancies page when they become available.
- Please be aware that each company will have their own recruitment process, the stages and timelines may vary. If applicants are successful, they will be offered a position as an apprentice with the company.
- An apprenticeship place on the programme will be confirmed by 91天堂色情片, and we will send further information about how to enrol as a student.
Funding
Full programme cost: £27,000
This apprenticeship is entirely funded through an Employers’ Apprenticeship Levy. Your employer fully covers the cost of the apprenticeship, apprentices do not pay for any of the eligible training costs. As an apprentice you will be an employee of your organisation, gaining a 91天堂色情片 award alongside working and earning a salary.
Employers who pay the Apprenticeship Levy will pay for the apprenticeship fees directly through that contribution. See further information about the Apprenticeship Levy funding.
Employers who do not pay the Levy will be able to claim 95 per cent of the cost of the apprenticeship from the Government. Up to 100 per cent Government contribution may be available if the employer has fewer than 50 employees and:
- Recruits an apprentice aged 16-18
- OR an apprentice aged 19-24 who has previously been in care or who has a local authority education, health and care plan
Employers must pay their apprentices a salary at least consistent with national legislation.
Funding eligibility criteria
To be eligible for funding the apprentice must meet the criteria listed in the .
The apprentice must have a valid and eligible residency status to gain entry onto the apprenticeship.
Learning
We will foster a strong early talent community across all engineering apprentices through combining cohorts across our engineering degree apprenticeship programmes in the first two years of teaching. This approach will build a South West Hub for engineering skills and give employers opportunities to engage across sectors and industries. Our strong relationships with regional FE providers will also strengthen engineering pathways for apprentices to build their careers within the businesses.
How you’ll learn
This apprenticeship adopts a balanced approach to supporting student learning through a combination of in-person lectures, hands on practical workshops, research/ industry led masterclasses and digital learning resources. Core topics include specialist subject knowledge supported by a strong foundation across engineering disciplines.
All students will all have access to the world class facilities at the 91天堂色情片, including benefitting from our recent £6.5 million investment in engineering teaching labs, workshop spaces and equipment. Additionally, students will benefit from established facilities across our Streatham Campus, including student study, wellbeing and careers support.
Assessment
Your performance at Exeter will be assessed in a variety of different ways, to equip you with the necessary skills for the workplace or further study. This includes coursework, lab & workshop-based tasks, exams, presentations and extended project-based activities.
Each module has a set of 'Intended Learning Outcomes' which specify what you should know and be able to do by the end of the module, and assessments are designed to demonstrate these.
Contact hours
Lectures and workshops are delivered through a series of 2-week blocks spaced throughout your degree apprenticeship. Structuring contact hours within these blocks provides a regular dedicated period of study for you to fully focus on your learning.
Outside of contact hours, you will have access to a wide range of the Universities digital resources, including our library, databases, lecture recordings and learning materials. You will also be in contact with a wide range of subject matter expert academics to guide and support your apprenticeship.
Careers
About the apprenticeship
As an apprentice, you will be a full salaried member of an organisation, typically earning between £13,000 and £19,000. Much of your learning will take place at work, either through projects linked to academic content or time set aside for distance learning.
Apprentices will be working in a relevant job from day one of your studies, meaning when you graduate, you'll have both the professional and academic experience sought after by employers.
Employer valued skills
The apprenticeship standard defines an apprentice's capabilities as an Electrical and Electronic Engineer. You will have gained experience in areas including project management, machine learning and AI, managing engineering practices in a safe and sustainable way and communicating with clients and workers of all levels.
Find out more about our Electronic Engineering degree apprenticeship

Employers
We can help you invest in upskilling your people and attract new talent via progression routes.

Aspiring apprentices
Discover why a Degree Apprenticeship is right for you.

