Building Services Engineering Pathway
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Learn how to design, implement, and manage the complex systems that make modern buildings safe, comfortable and energy-efficient.
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Develop expertise in key areas e.g. heating, ventilation and air conditioning (HVAC), electrical and mechanical services and building automation systems
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Apply sustainable and innovative solutions to real-world construction projects.

Level 5
(120 credits - 8 courses)

1. The Construction Supply Chain (15 credits)
Learners will gain knowledge of the key components of the construction supply chain e.g.:
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Skilled labour and plant
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Materials and specialist subcontractors
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Procurement and logistics
Learners will develop an understanding of how construction resources are acquired and managed to meet client requirements effectively, considering time, cost and quality throughout the supply chain.
Learners will explore how construction supply chain operations can be optimised, addressing challenges such as resource shortages, logistical constraints and market fluctuations. Learners will develop an understanding of resource procurement and effective supplier management, including the importance of collaborative and non-confrontational relationships with suppliers, subcontractors and other stakeholders. They will also examine the importance of trust, communication and mutual benefit in developing resilient supply chain networks and supporting successful project delivery.

2. Economics for Construction and the Built Environment (15 credits)
Learners will understand the key economic concepts relevant to construction e.g.:
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Microeconomics and macroeconomics
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Supply and demand
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Property investment and resale markets
Learners will develop an understanding of the economic forces that influence the construction industry, including their impact on construction activity, investment decisions and project viability.
Learners will examine how economic factors influence construction demand and investment decisions, considering market fluctuations, interest rates and government policies. Learners will analyse supply and demand within the construction sector, including its effects on resource availability, pricing and labour markets. They will also evaluate the relationship between economic conditions and project viability, developing an understanding of how wider economic changes can affect construction projects and the built environment.

3. Sustainable Construction and Environmental Impacts (15 credits)
Learners will gain knowledge of key principles of sustainable construction and environmental management e.g.:
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Sustainable development principles
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Environmental legislation and regulation
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Environmental Impact Assessments (EIAs)
Learners will develop an understanding of the environmental, social and regulatory factors that influence sustainable construction and the built environment.
Learners will examine the key drivers and constraints affecting sustainable development, including regulatory requirements, environmental challenges and social responsibility. They will develop skills in evaluating and producing Environmental Impact Assessments (EIAs), considering their purpose and practical application within construction projects. Learners will also assess innovative and sustainable construction strategies, identifying approaches that align with industry best practice and help reduce the environmental footprint of construction activities.

4. Personal and Professional Development (15 credits)
Learners will gain knowledge of key principles of personal and professional development e.g.:
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Personal Development Planning (PDP)
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Continuing Professional Development (CPD)
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Communication and collaboration skills
Learners will develop structured personal development plans, setting realistic goals for skill enhancement and career advancement while monitoring progress and adapting their plans as necessary.
Learners will recognise the importance of Continuing Professional Development (CPD) in maintaining and enhancing professional skills, staying up to date with industry developments and supporting long-term employability. Learners will explore how CPD activities can be integrated into their career development strategy. They will also develop advanced communication and collaboration skills, including active listening, negotiation, conflict resolution and effective team working, supporting strong professional relationships and workplace success.

5. Advanced Heating, Ventilation and Air Conditioning Design and Installation (15 credits)
Learners will gain knowledge of key principles of advanced HVAC design and installation e.g.:
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Heating, ventilation and air conditioning systems
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Thermal loads, humidity and indoor air quality
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Low-carbon and renewable energy technologies
Learners will develop an understanding of how HVAC systems are designed to provide effective climate control, occupant comfort and energy-efficient performance within different types of buildings.
Learners will examine the design and selection of HVAC systems for a range of building types, including multi-storey and large-scale buildings, considering zoning, sizing, system layout and appropriate equipment selection. They will develop an understanding of HVAC installation and integration with other building services, including electrical, plumbing and structural systems.

6. Advanced Electrical Design and Installation (15 credits)
Learners will gain knowledge of key principles of advanced electrical design and installation e.g.:
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Electrical distribution and circuit design
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Component selection and system specification
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Electrical safety and regulatory compliance
Learners will develop an understanding of how electrical systems are designed and specified for commercial buildings, considering safety, efficiency, performance and compliance with relevant industry requirements.
Learners will examine the principles and regulations governing electrical system design, including relevant requirements of the IET Wiring Regulations. They will develop skills in designing and specifying electrical distribution systems, selecting appropriate components and producing suitable technical documentation for commercial applications. Learners will also assess electrical safety, system efficiency and regulatory compliance, ensuring that proposed installations are reliable, appropriate for their intended use and aligned with current industry standards.

7. Mathematical Methods in Construction Projects (15 credits)
Learners will gain knowledge of mathematical methods used in construction projects e.g.:
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Algebra, trigonometry and calculus
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Statistical analysis and probability
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Mathematical modelling and optimisation
Learners will apply mathematical and statistical techniques to analyse construction data, solve complex problems and support informed decision-making in areas such as cost estimation, project scheduling and resource allocation.
Learners will develop skills to create and apply mathematical models to construction projects, including techniques such as linear programming and critical path analysis to optimise the use of materials, labour and time. They will use statistical methods to interpret data and assess project risks, supporting effective planning and decision-making. Learners will also critically evaluate the effectiveness and limitations of mathematical methods, considering assumptions and error margins when applying them to cost control and project scheduling.

8. Engineering for Construction: Theory and Practice (15 credits)
Learners will gain knowledge of fundamental engineering principles used in construction e.g.:
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Load-bearing structures and forces
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Material strength and performance
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Structural and building systems
Learners will apply engineering principles to real-world construction problems, including the design of structural components, analysis of forces and optimisation of building systems for safety, performance and efficiency.
Learners will develop an understanding of how engineering decisions influence the design and performance of construction projects, applying theoretical principles to practical construction scenarios. They will critically assess the relationship between engineering, safety and environmental sustainability, considering how design decisions affect both project performance and the wider environment. Learners will also examine regulatory, ethical and sustainability requirements in construction engineering.
What makes Francis James different?
Alongside technical skills, the programme covers broader aspects of the construction industry, including project management, supply chains, financial management and compliance with building regulations. Learners gain proficiency in digital tools such as computer-aided design (CAD), Building Information Modelling (BIM), and other software used to optimise building systems.
Throughout the programme, there is a strong emphasis on sustainability, innovation and professional practice. Learners learn to integrate environmentally responsible design methods, evaluate emerging technologies and develop skills in leadership, teamwork and problem-solving.













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