
EV Engineer Course
The EV Engineer Course gives you the technical depth to design, integrate, and validate every major system in a battery electric vehicle. From battery packs and traction motors to power electronics, thermal management, and vehicle control software, you'll build skills that the EV industry demands right now. This is the most complete engineering program available for professionals serious about leading EV development.
What you will learn:
You will master the full scope of electric vehicle engineering, starting with EV fundamentals and energy modeling, then advancing through battery pack design, BMS configuration, traction motor selection, and inverter development. You will learn to design integrated thermal management systems, develop vehicle control unit software, and implement functional safety strategies. Charging infrastructure, grid integration, and V2G architectures are covered in detail. You will also gain hands-on knowledge of HIL testing, powertrain bench validation, and regulatory homologation. Supplementary content covers solid-state batteries, autonomous EV systems, lifecycle assessment, and program cost engineering.
How you study in a practical way EV Engineer Course
How you practice EV Engineer Course
For companies who want to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Electric Vehicle Technology
Foundations of Electric Vehicle Technology
Lesson 1 • Electrochemical Energy Storage Basics
Covers fundamental electrochemistry behind lithium-ion cells and pack construction. Connects cell-level behavior to vehicle-level performance metrics.
Lesson 2 • Vehicle Energy Consumption Modeling
Teaches methods to estimate driving range using load cycle analysis and efficiency maps. Grounds abstract component specs in real-world vehicle performance.
Lesson 3 • EV System Architecture Overview
Introduces the major subsystems of a battery electric vehicle and their interactions. Establishes the mental model needed for all subsequent technical chapters.
Lesson 4 • Power Electronics Fundamentals
Introduces inverters, converters, and switching devices that manage energy flow. Prepares students for detailed power electronics design in later chapters.
Lesson 5 • Electric Motor Principles
Explains electromagnetic principles underlying traction motors used in EVs. Provides the physics foundation required for motor selection and control chapters.
Chapter 2HideHide detailsSee detailsBattery Pack Design and Management
Battery Pack Design and Management
Lesson 1 • Battery Management System Design
Explains BMS functions including cell monitoring, balancing, and protection logic. Students configure BMS parameters to meet safety and performance targets.
Lesson 2 • Cell Selection and Characterization
Covers criteria for selecting cells based on energy, power, cycle life, and safety. Links cell-level data sheets to pack-level design requirements.
Lesson 3 • Thermal Management of Battery Packs
Addresses heat generation, cooling strategies, and thermal runaway prevention. Ensures students can design thermal systems that maintain safe cell temperatures.
Lesson 4 • Pack Safety and Abuse Testing
Covers mechanical, electrical, and thermal abuse test protocols for battery packs. Prepares students to validate pack designs against international safety standards.
Lesson 5 • Pack Architecture and Mechanical Design
Teaches module and pack layout, structural integration, and busbar design. Connects mechanical packaging decisions to electrical and thermal performance.
Chapter 3HideHide detailsSee detailsTraction Motor Design and Selection
Traction Motor Design and Selection
Lesson 1 • Motor Topology Comparison
Compares permanent magnet, induction, and switched reluctance motor types for EV use. Establishes trade-offs that guide motor selection decisions.
Lesson 2 • Gearbox and Drivetrain Integration
Covers single-speed and multi-speed transmission options and their integration with traction motors. Prepares students to match gear ratios to motor and vehicle requirements.
Lesson 3 • Electromagnetic Design Principles
Covers stator winding, rotor geometry, and magnetic circuit design for traction motors. Connects design parameters to torque density and efficiency outcomes.
Lesson 4 • Motor Thermal Management
Addresses heat dissipation in windings, magnets, and bearings under continuous and peak loads. Ensures students can size cooling systems for target duty cycles.
Lesson 5 • Motor Performance Mapping
Teaches construction and use of torque-speed efficiency maps for motor evaluation. Links motor maps to vehicle-level energy consumption models from Chapter 1.
Chapter 4HideHide detailsSee detailsPower Electronics and Inverter Design
Power Electronics and Inverter Design
Lesson 1 • Wide-Bandgap Semiconductor Devices
Covers silicon carbide and gallium nitride device properties and their advantages in EV inverters. Prepares students to select and apply next-generation switching devices.
Lesson 2 • EMC and Filtering in Power Converters
Teaches sources of conducted and radiated emissions in EV power converters and mitigation methods. Prepares students to meet electromagnetic compatibility requirements.
Lesson 3 • Thermal Design of Power Modules
Addresses junction-to-coolant thermal path design and power cycling reliability. Ensures inverter thermal design meets lifetime requirements under real drive cycles.
Lesson 4 • Traction Inverter Architecture
Explains three-phase inverter topology, switching sequences, and modulation strategies. Builds on power electronics fundamentals to address traction-specific requirements.
Lesson 5 • Onboard Charger Design
Covers AC-DC rectification and isolated DC-DC stages for onboard charging systems. Connects charger design to grid interface and battery charging requirements.
Chapter 5HideHide detailsSee detailsEV Thermal Management Systems
EV Thermal Management Systems
Lesson 1 • Cabin HVAC and Thermal Comfort
Addresses cabin heating, ventilation, and air conditioning design for EVs with limited waste heat. Connects HVAC energy consumption to driving range impact.
Lesson 2 • Integrated Thermal System Architecture
Introduces the thermal domains of an EV and their interconnections via coolant loops. Establishes the system-level view needed to optimize thermal energy flows.
Lesson 3 • Coolant Circuit Design and Simulation
Teaches coolant flow network design, pump sizing, and 1D thermal simulation methods. Ensures students can validate thermal designs before hardware build.
Lesson 4 • Thermal System Validation and Testing
Covers climatic chamber testing, thermal soak tests, and cold-start validation procedures. Prepares students to verify thermal system performance across operating extremes.
Lesson 5 • Refrigerant Cycle Design for EVs
Covers vapor compression cycle adaptation for EV cabin cooling and battery conditioning. Prepares students to select refrigerants and size compressor and heat exchanger components.
Chapter 6HideHide detailsSee detailsVehicle Control Systems and Software
Vehicle Control Systems and Software
Lesson 1 • Calibration and Embedded Diagnostics
Covers parameter calibration workflows and onboard diagnostic system design for EV controllers. Prepares students to tune control strategies and support field diagnostics.
Lesson 2 • Functional Safety in EV Software
Introduces automotive functional safety concepts applied to EV powertrain software development. Ensures students can identify hazards and implement safety integrity requirements.
Lesson 3 • Torque and Power Management Strategies
Teaches driver demand interpretation, torque arbitration, and power limiting algorithms. Connects control logic to motor and battery constraints established in earlier chapters.
Lesson 4 • Vehicle Control Unit Architecture
Covers VCU hardware selection, real-time operating system configuration, and I/O mapping. Establishes the control platform on which all powertrain strategies run.
Lesson 5 • CAN Bus and Network Communication
Covers CAN, CAN-FD, and LIN network design for EV powertrain communication. Prepares students to design reliable in-vehicle networks and diagnose communication faults.
Chapter 7HideHide detailsSee detailsCharging Systems and Grid Integration
Charging Systems and Grid Integration
Lesson 1 • Vehicle-to-Grid and Bidirectional Charging
Covers V2G, V2H, and V2L power flow architectures and their control requirements. Prepares students to design bidirectional charging systems for grid services.
Lesson 2 • Charging Communication Protocols
Covers pilot signal control, power line communication, and high-level charging protocols. Prepares students to implement compliant vehicle-to-EVSE communication.
Lesson 3 • AC and DC Charging Standards
Compares Level 1, Level 2, and DC fast charging architectures and connector standards. Establishes the infrastructure context for onboard and off-board charger design.
Lesson 4 • DC Fast Charging Station Design
Addresses power conversion, thermal management, and protection in DC fast chargers. Connects station-level design to vehicle charging acceptance and battery limits.
Lesson 5 • Grid Impact and Smart Charging
Teaches demand response, load scheduling, and grid impact assessment for EV fleets. Ensures students can design charging strategies that minimize grid stress.
Chapter 8HideHide detailsSee detailsEV System Integration and Validation
EV System Integration and Validation
Lesson 1 • Hardware-in-the-Loop Testing
Teaches HIL simulation setup for testing VCU, BMS, and inverter software before vehicle build. Accelerates validation by replacing physical hardware with real-time plant models.
Lesson 2 • Vehicle-Level Validation Testing
Addresses range, performance, durability, and safety testing at the complete vehicle level. Ensures all subsystem interactions are validated under real operating conditions.
Lesson 3 • Regulatory Homologation Process
Introduces the type approval and homologation process for EVs in major markets. Prepares students to plan compliance activities and manage certification documentation.
Lesson 4 • Powertrain Bench Testing
Covers e-axle and powertrain test bench setup, instrumentation, and drive cycle execution. Validates integrated motor, inverter, and gearbox performance before vehicle installation.
Lesson 5 • System Integration Planning
Covers interface control documents, integration milestones, and risk management for EV programs. Establishes the engineering process that coordinates all subsystem teams.
Your valid completion certificate
This course is for you:
Mechanical engineer: ready to pivot into EV powertrain development roles.
Electrical engineer: wanting to specialize in automotive power electronics and controls.
Automotive technician: aiming to move into EV design and engineering positions.
Recent engineering graduate: seeking structured, industry-relevant EV technical expertise.
Product manager: needing deep technical fluency to lead EV development teams.
Aerospace engineer: transferring systems integration skills into the EV industry.
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