
Engineering Technician Course
Launch a hands-on career in engineering technology with the skills employers actually need on the job. This course covers mechanical systems, electrical circuits, fluid power, instrumentation, and technical drawing from the ground up. Whether you're entering the field or formalizing what you already know, this program gives you the technical foundation to perform, troubleshoot, and advance.
What your team will master:
You will build a complete technical skill set spanning engineering materials, mechanical components, electrical systems, fluid power, and process control. You will learn to read and produce engineering drawings using CAD tools and apply applied mathematics to real calculations. You will identify and select materials based on mechanical and thermal properties, then analyze forces and size components for load requirements. You will wire and troubleshoot electrical circuits, configure sensors, and program basic PLC logic. The course closes with a capstone project that takes you from system specification through commissioning and handover documentation.
How your team studies in practice Engineering Technician Course
How your team practices Engineering Technician Course
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Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Engineering Technology
Foundations of Engineering Technology
Lesson 1 • Safety and Regulatory Compliance
Presents workplace hazard identification, personal protective equipment selection, and regulatory compliance frameworks. Safe practices are mandatory before any hands-on technical work.
Lesson 2 • Technical Documentation Standards
Introduces engineering drawing conventions, notation systems, and document control practices. Proper documentation ensures traceability and compliance throughout projects.
Lesson 3 • Applied Mathematics for Technicians
Reviews algebra, geometry, and basic trigonometry as applied to engineering problems. These skills are prerequisites for all quantitative analysis in the course.
Lesson 4 • Introduction to Engineering Roles
Defines the engineering technician's scope of work, responsibilities, and position within project teams. Clarifies distinctions between technician, technologist, and engineer roles.
Lesson 5 • Measurement Systems and Units
Covers SI and imperial unit systems, conversion methods, and precision requirements. Accurate measurement underpins all technical calculations in later chapters.
Chapter 2HideHide detailsSee detailsEngineering Materials and Properties
Engineering Materials and Properties
Lesson 1 • Classification of Engineering Materials
Categorizes materials by atomic structure and bonding type, linking microstructure to macroscopic behavior. This taxonomy guides material selection decisions throughout the chapter.
Lesson 2 • Mechanical Properties of Materials
Defines tensile strength, hardness, ductility, toughness, and fatigue resistance with standard test methods. Understanding these properties enables load-bearing component design.
Lesson 3 • Corrosion and Material Degradation
Identifies electrochemical corrosion mechanisms, oxidation, and wear degradation modes. Prevention strategies extend component service life and reduce maintenance costs.
Lesson 4 • Thermal and Electrical Properties
Examines thermal conductivity, expansion coefficients, and electrical resistivity relevant to component performance. These properties influence material choice in thermal and electrical systems.
Lesson 5 • Material Selection for Applications
Applies selection criteria including cost, weight, strength, and environmental resistance to real design scenarios. Students practice structured decision-making using material property charts.
Chapter 3HideHide detailsSee detailsEngineering Drawing and CAD Fundamentals
Engineering Drawing and CAD Fundamentals
Lesson 1 • 3D Modeling and Drawing Output
Extends 2D skills to solid modeling using extrusion, revolution, and Boolean operations. Students generate dimensioned drawing sheets directly from 3D models.
Lesson 2 • Sectional and Detail Views
Explains full, half, and broken-out sections and detail view enlargements for complex internal features. These views communicate internal geometry that orthographic views cannot show clearly.
Lesson 3 • Dimensioning and Tolerancing
Covers linear, angular, and geometric dimensioning conventions and tolerance specification methods. Correct tolerancing ensures parts fit and function as designed.
Lesson 4 • Introduction to CAD Software
Introduces the CAD interface, coordinate systems, and basic 2D drawing commands. Students create accurate 2D geometry as the basis for later 3D modeling work.
Lesson 5 • Orthographic Projection Principles
Teaches first-angle and third-angle projection methods for representing 3D objects in 2D views. Mastery of projection is the foundation for all technical drawing work.
Chapter 4HideHide detailsSee detailsMechanical Systems and Components
Mechanical Systems and Components
Lesson 1 • Fasteners and Joining Methods
Identifies threaded fasteners, keys, pins, and adhesive joining methods with their load-carrying capacities. Correct fastener selection prevents joint failure under service loads.
Lesson 2 • Gears, Belts, and Chain Drives
Analyzes gear ratios, belt tension, and chain drive kinematics for power transmission applications. Students calculate speed, torque, and efficiency for each drive type.
Lesson 3 • Preventive Maintenance Practices
Establishes lubrication schedules, alignment procedures, and condition monitoring techniques for mechanical systems. Systematic maintenance reduces unplanned downtime and extends equipment life.
Lesson 4 • Forces, Loads, and Static Equilibrium
Applies Newton's laws to resolve forces, calculate reactions, and verify static equilibrium in structures. This analysis is prerequisite to sizing any mechanical component.
Lesson 5 • Bearings and Shafts
Covers rolling-element and plain bearing types, load ratings, and shaft design for bending and torsion. Proper bearing and shaft selection ensures reliable rotational system performance.
Chapter 5HideHide detailsSee detailsElectrical and Electronic Systems
Electrical and Electronic Systems
Lesson 1 • Electronic Components and Circuits
Identifies resistors, capacitors, inductors, diodes, and transistors and explains their circuit functions. Component knowledge enables reading and building basic electronic circuits.
Lesson 2 • Electrical Measurement Instruments
Covers multimeter, oscilloscope, and clamp meter operation for voltage, current, resistance, and waveform measurement. Accurate measurement is critical for safe and effective fault diagnosis.
Lesson 3 • AC Circuit Fundamentals
Introduces sinusoidal waveforms, RMS values, impedance, and power factor in AC circuits. AC analysis is essential for understanding industrial power distribution systems.
Lesson 4 • DC Circuit Analysis
Applies Ohm's law, Kirchhoff's laws, and series-parallel circuit rules to solve DC network problems. These analytical skills underpin all subsequent electrical and electronic work.
Lesson 5 • Electrical Safety and Wiring Practices
Enforces safe isolation procedures, conductor sizing, and termination methods for low-voltage installations. Compliance with wiring standards prevents shock, fire, and equipment damage.
Chapter 6HideHide detailsSee detailsFluid Power and Thermodynamic Systems
Fluid Power and Thermodynamic Systems
Lesson 1 • Pneumatic System Components
Covers compressors, air treatment units, cylinders, and pneumatic valves for motion control applications. Pneumatic systems are widely used in automation and require distinct maintenance practices.
Lesson 2 • Fluid Mechanics Fundamentals
Introduces fluid properties, pressure, flow rate, and Bernoulli's equation for incompressible flow. These principles govern the behavior of all hydraulic and pneumatic systems.
Lesson 3 • Thermodynamic Principles
Applies the first and second laws of thermodynamics to heat transfer, work, and efficiency calculations. Thermodynamic analysis is required for evaluating engines, compressors, and heat exchangers.
Lesson 4 • System Troubleshooting and Maintenance
Applies systematic fault-finding methods to hydraulic and pneumatic systems using pressure and flow testing. Structured diagnosis minimizes downtime and prevents repeat failures.
Lesson 5 • Hydraulic System Components
Identifies pumps, actuators, valves, and accumulators and explains their roles in hydraulic circuits. Component knowledge enables circuit reading, assembly, and fault diagnosis.
Chapter 7HideHide detailsSee detailsInstrumentation and Process Control
Instrumentation and Process Control
Lesson 1 • Sensors and Transducers
Covers temperature, pressure, flow, and position sensors with their operating principles and output signal types. Sensor selection directly affects measurement accuracy and control system performance.
Lesson 2 • Control System Fundamentals
Introduces open-loop and closed-loop control concepts, block diagrams, and feedback terminology. Understanding control theory is prerequisite to configuring and tuning real control loops.
Lesson 3 • PID Controller Configuration
Explains proportional, integral, and derivative control actions and their effects on process response. Students configure and tune PID parameters to achieve stable, accurate control.
Lesson 4 • Programmable Logic Controllers
Covers PLC hardware architecture, ladder logic programming, and I/O wiring for discrete and analog control. PLCs are the primary automation platform in modern industrial facilities.
Lesson 5 • Signal Conditioning and Transmission
Explains amplification, filtering, analog-to-digital conversion, and 4–20 mA signal transmission standards. Proper signal conditioning ensures reliable data transfer from field devices to controllers.
Chapter 8HideHide detailsSee detailsTechnical Problem-Solving and Project Execution
Technical Problem-Solving and Project Execution
Lesson 1 • Capstone Project Commissioning
Guides students through specification, build, test, and handover of an integrated technical system. The capstone demonstrates competency across all core course disciplines.
Lesson 2 • Project Planning and Scheduling
Introduces work breakdown structures, Gantt charts, and resource allocation for engineering projects. Effective planning ensures on-time, on-budget project delivery.
Lesson 3 • Technical Report Writing
Structures technical reports with executive summaries, methodology, results, and recommendations. Clear reporting communicates findings to both technical and non-technical stakeholders.
Lesson 4 • Structured Fault Diagnosis
Applies root cause analysis, fault trees, and systematic elimination methods to complex multi-system failures. Structured diagnosis reduces mean time to repair across mechanical, electrical, and fluid systems.
Lesson 5 • Quality Assurance and Testing
Covers inspection methods, acceptance criteria, calibration records, and non-conformance reporting. Quality assurance ensures deliverables meet specifications before handover.
Your valid completion certificate
This course is for you:
Maintenance worker: wants formal knowledge to back up years of hands-on experience.
Recent high school graduate: exploring a practical, well-paying alternative to a four-year degree.
Career changer: moving from construction or logistics into a technical support role.
Military veteran: translating equipment operation experience into a civilian engineering credential.
Manufacturing operator: ready to step into a technician or specialist position at work.
Hobbyist maker: building real technical depth behind a passion for machines and electronics.
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