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| Training Mode | Platform | Fee | Enroll |
|---|---|---|---|
| Online Training | Zoom/ Google Meet | 1,740USD | Register |
| Course Date | Location | Fee | Enroll |
|---|---|---|---|
| 05/10/2026 to 16/10/2026 | Nairobi | 2,900 USD | Register |
| 02/11/2026 to 13/11/2026 | Mombasa | 3,400 USD | Register |
| 02/11/2026 to 13/11/2026 | Nairobi | 2,900 USD | Register |
| 07/12/2026 to 18/12/2026 | Nairobi | 2,900 USD | Register |
| 07/12/2026 to 18/12/2026 | Mombasa | 3,400 USD | Register |
Course Introduction
Electric Mobility Infrastructure Engineering is a rapidly evolving discipline that focuses on the planning, design, implementation, operation, and maintenance of charging infrastructure and supporting electrical systems for electric vehicles (EVs). As governments, industries, and transportation providers accelerate the transition toward low-carbon mobility, reliable and scalable charging infrastructure has become essential for supporting sustainable transportation networks. This comprehensive course equips participants with the technical knowledge, engineering expertise, and practical skills required to develop future-ready electric mobility infrastructure while ensuring safety, efficiency, reliability, and regulatory compliance.
The widespread adoption of electric vehicles has created unprecedented demand for advanced charging technologies, grid integration, battery energy storage, renewable energy systems, and intelligent energy management solutions. This course provides participants with an in-depth understanding of electric vehicle charging systems, charging station design, electrical distribution networks, power electronics, smart charging technologies, communication protocols, and utility coordination. Participants will develop practical competencies that enable them to design resilient charging infrastructure capable of supporting residential, commercial, industrial, and public transportation applications.
The program integrates engineering principles with practical applications through industry case studies, engineering simulations, infrastructure planning exercises, and internationally recognized engineering standards. Participants will gain expertise in charging load analysis, electrical system sizing, site selection, demand forecasting, equipment specification, protection coordination, installation planning, operational performance evaluation, and lifecycle asset management. The course also examines investment planning, project economics, maintenance strategies, and infrastructure optimization to maximize system reliability and long-term operational value.
Special emphasis is placed on emerging digital technologies transforming electric mobility infrastructure. Participants will explore artificial intelligence, digital twins, Industrial Internet of Things (IIoT), predictive analytics, cloud-based charging management systems, blockchain-enabled energy transactions, vehicle-to-grid technologies, autonomous charging systems, wireless charging, and advanced energy management platforms. These technologies improve charging efficiency, optimize grid interaction, enhance customer experience, reduce operational costs, and enable intelligent management of increasingly complex charging ecosystems.
The course also examines renewable energy integration, battery energy storage systems, smart grids, cybersecurity, climate resilience, carbon reduction strategies, ESG principles, sustainable infrastructure development, and international regulatory frameworks governing electric mobility. Participants will understand how engineering innovation supports clean transportation while ensuring reliable electricity supply, secure digital infrastructure, resilient charging networks, and compliance with evolving environmental and technical standards.
Upon successful completion of this intensive training program, participants will possess the technical expertise, analytical capabilities, and engineering confidence required to design, implement, optimize, and manage electric mobility infrastructure projects. Graduates will be prepared to contribute to utilities, electric vehicle manufacturers, charging network operators, engineering consulting firms, government agencies, renewable energy developers, transportation authorities, and infrastructure organizations driving the global transition toward sustainable electric mobility.
10 days
Electrical engineers
Power system engineers
Electric vehicle infrastructure engineers
Transportation engineers
Utility engineers
Renewable energy engineers
Charging network operators
Smart grid engineers
Project managers
Energy consultants
Infrastructure planners
Automation and control engineers
Electrical contractors and installers
Municipal and transport authority officials
Sustainability and ESG professionals
Asset management engineers
Policy and regulatory professionals
Energy researchers and academics
Facility and operations managers
Technology solution architects
Develop comprehensive knowledge of electric mobility infrastructure engineering, charging technologies, electrical systems, and sustainable transportation energy networks.
Understand electric vehicle charging standards, charging equipment selection, connector technologies, communication protocols, and interoperability requirements for modern charging infrastructure.
Design reliable charging infrastructure for residential, commercial, industrial, fleet, highway, and public transportation applications using engineering best practices.
Evaluate electrical distribution systems, transformer sizing, protection coordination, and grid integration strategies supporting large-scale electric vehicle charging deployment.
Apply engineering principles to integrate renewable energy systems, battery energy storage, and smart grid technologies into electric mobility infrastructure projects.
Implement intelligent charging management systems utilizing artificial intelligence, digital twins, Industrial Internet of Things, predictive analytics, and cloud-based monitoring platforms.
Conduct charging demand forecasting, load analysis, site selection, capacity planning, and network optimization to maximize operational efficiency and customer accessibility.
Assess infrastructure resilience, cybersecurity risks, equipment reliability, maintenance strategies, and lifecycle asset management supporting continuous charging operations.
Perform technical, environmental, financial, and operational feasibility studies supporting investment decisions and electric mobility infrastructure expansion initiatives.
Interpret international electric vehicle charging standards, electrical safety regulations, grid codes, environmental requirements, and infrastructure compliance obligations.
Evaluate emerging technologies including vehicle-to-grid systems, wireless charging, autonomous charging, blockchain-enabled energy trading, and next-generation battery technologies.
Strengthen engineering leadership, stakeholder collaboration, project management, and strategic planning capabilities required to deliver complex electric mobility infrastructure projects.
Evolution of electric mobility and global transportation electrification trends
Components of integrated electric vehicle charging infrastructure systems
Electric mobility ecosystem stakeholders and operational frameworks
International standards governing electric mobility infrastructure design
AC and DC fast charging technologies for diverse mobility applications
Charging connector standards and interoperability engineering practices
Ultra-fast charging systems supporting high-capacity transportation networks
Charging station performance evaluation and operational optimization methods
Electrical load calculations for electric vehicle charging installations
Transformer sizing and distribution system engineering considerations
Protection coordination ensuring safe charging system operation
Power quality management supporting reliable charging infrastructure
Smart charging strategies reducing grid congestion and peak demand
Utility coordination supporting reliable charging infrastructure expansion
Demand response integration improving charging network flexibility
Grid modernization supporting widespread electric vehicle adoption
Solar photovoltaic integration with electric vehicle charging facilities
Battery energy storage systems improving charging reliability and resilience
Hybrid renewable charging stations supporting sustainable transportation
Microgrid applications enhancing charging infrastructure independence
Site selection methodologies for public and private charging facilities
Charging network planning supporting urban and regional transportation
Infrastructure permitting, approvals, and construction management practices
Accessibility considerations improving charging network usability
Power conversion technologies supporting efficient charging operations
Intelligent charging controllers optimizing energy delivery performance
Communication protocols enabling interoperable charging infrastructure
Monitoring systems supporting operational visibility and control
Artificial intelligence optimizing charging demand and infrastructure usage
Digital twin applications supporting charging infrastructure management
Industrial Internet of Things enabling real-time asset monitoring
Predictive analytics improving equipment reliability and maintenance planning
Vehicle-to-grid technologies supporting distributed energy management
Bidirectional charging applications improving grid flexibility and resilience
Energy trading opportunities through connected electric vehicle fleets
Regulatory considerations affecting vehicle-to-grid deployment strategies
Preventive maintenance strategies for charging infrastructure reliability
Asset lifecycle management supporting long-term operational performance
Reliability engineering reducing charging equipment downtime
Spare parts and service management for charging network operators
Cybersecurity frameworks protecting connected charging infrastructure systems
Secure communication networks supporting charging operations
Climate resilience planning for critical charging infrastructure assets
Business continuity strategies ensuring uninterrupted charging services
Carbon reduction strategies through electric mobility infrastructure deployment
ESG principles supporting sustainable transportation development
Circular economy approaches for charging equipment lifecycle management
Environmental impact assessment for charging infrastructure projects
Financial modeling supporting electric mobility infrastructure investments
Cost-benefit analysis for charging network development projects
Funding mechanisms and incentive programs supporting infrastructure growth
Commercial business models for charging network operations
Wireless charging technologies transforming future mobility infrastructure
Autonomous charging systems supporting intelligent transportation networks
Blockchain applications enabling secure charging transactions and payments
Next-generation battery technologies influencing infrastructure planning
National and international regulations governing charging infrastructure
Utility interconnection requirements supporting safe system integration
Electrical safety standards for charging station engineering
Policy frameworks accelerating electric mobility infrastructure deployment
International case studies highlighting successful charging infrastructure projects
Lessons learned from large-scale electric mobility implementations worldwide
Integrated charging infrastructure planning and engineering design project
Capstone project applying comprehensive electric mobility engineering principles
Training Approach
This course will be delivered by our skilled trainers who have vast knowledge and experience as expert professionals in the fields. The course is taught in English and through a mix of theory, practical activities, group discussion and case studies. Course manuals and additional training materials will be provided to the participants upon completion of the training.
Tailor-Made Course
This course can also be tailor-made to meet organization requirement. For further inquiries, please contact us on: Email: training@upskilldevelopment.com Tel: +254 721 331 808
Training Venue
The training will be held at our Upskill Training Centre. We also offer training for a group (at a discount of 10% to 50%) at requested location all over the world. The Onsite course fee covers the course tuition, training materials, two break refreshments, buffet lunch, airport transfers, Upskill gift package, and guided tour.
Visa application, travel expenses, dinners, accommodation, insurance, and other personal expenses are catered by the participant
Certification
Participants will be issued with Upskill certificate upon completion of this course.
Airport Pickup and Accommodation
Airport pickup and accommodation is arranged upon request. For booking contact our Training Coordinator through Email: training@upskilldevelopment.com, +254 721 331 808
Terms of Payment:
Unless otherwise agreed between the two parties’ payment of the course fee should be done 3 working days before commencement of the training so as to enable us to prepare better.
| Training Mode | Platform | Fee | Enroll |
|---|---|---|---|
| Online Training | Zoom/ Google Meet | 1,740USD | Register |
| Course Date | Location | Fee | Enroll |
|---|---|---|---|
| 05/10/2026 to 16/10/2026 | Nairobi | 2,900 USD | Register |
| 02/11/2026 to 13/11/2026 | Mombasa | 3,400 USD | Register |
| 02/11/2026 to 13/11/2026 | Nairobi | 2,900 USD | Register |
| 07/12/2026 to 18/12/2026 | Nairobi | 2,900 USD | Register |
| 07/12/2026 to 18/12/2026 | Mombasa | 3,400 USD | Register |
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