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Automation Engineering Course
More than 2 million students worldwide

Automation Engineering Course

4

Master the full spectrum of automation engineering — from PLC programming and process control to industrial networking, robotics, and IIoT integration. This course gives you the technical depth and hands-on skills to design, commission, and maintain modern automated systems across manufacturing and process industries.

Dedika for businesses

What you will learn:

You will build a solid foundation in electrical fundamentals, sensors, and control theory before advancing to PLC programming using IEC 61131-3 languages. You will learn to design and tune PID controllers, configure SCADA and HMI systems, and set up industrial communication networks including PROFIBUS, PROFINET, and OPC UA. The course also covers robotics, servo motion control, functional safety, and IIoT edge computing. You will apply lean manufacturing principles and project management methods to real automation scenarios. By the end, you will have the technical knowledge to contribute to complex automation projects from concept through commissioning.

How you study in practice Automation Engineering Course

How you practice Automation Engineering Course

For companies that want to train their team

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Automation Engineering

  • Lesson 1 • Safety and Standards in Automation

    Introduces functional safety principles and international standards governing automated equipment. Grounds students in compliance requirements before hands-on design work.

  • Lesson 2 • Core Components of Automated Systems

    Identifies sensors, actuators, controllers, and communication links as fundamental building blocks. Provides a component-level understanding essential for system design.

  • Lesson 3 • Automation System Architectures

    Examines hierarchical and distributed control architectures used in industrial plants. Connects system structure to operational efficiency and scalability.

  • Lesson 4 • Introduction to Industrial Automation

    Defines automation engineering and its role in modern manufacturing and process industries. Establishes vocabulary and context for all subsequent technical content.

Chapter 2See details

Electrical and Electronic Fundamentals

  • Lesson 1 • DC Circuit Analysis

    Covers voltage, current, resistance, and power relationships in direct-current circuits. Provides the mathematical foundation for understanding control panel wiring.

  • Lesson 2 • Reading and Creating Electrical Schematics

    Teaches standard symbols, drawing conventions, and schematic interpretation skills. Enables students to read control panel drawings and create basic wiring diagrams.

  • Lesson 3 • Electronic Components and Circuits

    Introduces diodes, transistors, and op-amps as building blocks of control electronics. Links component behavior to signal conditioning and interface circuits.

  • Lesson 4 • AC Circuit Principles

    Explains alternating current waveforms, impedance, and power factor in industrial contexts. Prepares students to work with motor drives and power distribution systems.

  • Lesson 5 • Grounding, Shielding, and Noise Reduction

    Addresses electromagnetic interference sources and mitigation strategies in control systems. Directly supports reliable sensor and signal wiring in automation installations.

Chapter 3See details

Sensors, Transducers, and Signal Conditioning

  • Lesson 1 • Position, Proximity, and Level Sensing

    Examines inductive, capacitive, optical, and ultrasonic sensors for discrete and continuous detection. Provides selection criteria for machine and process automation scenarios.

  • Lesson 2 • Pressure and Flow Measurement

    Covers differential pressure, gauge, and absolute pressure sensors alongside flow measurement technologies. Builds competency in selecting instruments for fluid and gas processes.

  • Lesson 3 • Sensor Calibration and Validation

    Introduces calibration procedures, traceability, and uncertainty analysis for industrial instruments. Connects calibration practice to quality and regulatory compliance requirements.

  • Lesson 4 • Signal Conditioning and Transmission

    Explains amplification, filtering, isolation, and 4–20 mA/HART signal standards. Ensures students can interface field devices to controllers without signal degradation.

  • Lesson 5 • Temperature Measurement Devices

    Compares thermocouples, RTDs, and thermistors across accuracy, range, and cost dimensions. Connects sensor choice to process requirements and controller input specifications.

Chapter 4See details

Programmable Logic Controllers

  • Lesson 1 • PLC Commissioning and Troubleshooting

    Covers online monitoring, force functions, diagnostic buffers, and systematic fault-finding methods. Prepares students to commission and maintain PLC systems in live plant environments.

  • Lesson 2 • Timers, Counters, and Data Handling

    Teaches timer and counter instructions alongside data move, compare, and math operations. Builds the instruction set needed for real-world sequence and batch control programs.

  • Lesson 3 • IEC 61131-3 Programming Languages

    Covers Ladder Diagram, Function Block Diagram, Structured Text, and Instruction List languages. Enables students to choose the appropriate language for each control task.

  • Lesson 4 • Program Structure and Modular Design

    Introduces program organization units, tasks, and modular programming best practices. Promotes maintainable, reusable code structures for complex automation projects.

  • Lesson 5 • PLC Hardware Architecture

    Describes CPU, memory, I/O modules, and power supply components of a PLC system. Establishes hardware knowledge needed before programming and configuration tasks.

Chapter 5See details

Control Theory and Process Control

  • Lesson 1 • PID Controller Design and Tuning

    Explains proportional, integral, and derivative actions and their combined effect on process response. Covers manual and auto-tuning methods for real industrial loops.

  • Lesson 2 • Discrete and Batch Process Control

    Addresses sequential logic, state machines, and ISA-88 batch control standards for recipe-driven processes. Connects continuous control knowledge to discrete manufacturing contexts.

  • Lesson 3 • Fundamentals of Feedback Control

    Introduces open-loop and closed-loop control concepts, block diagrams, and transfer functions. Establishes the mathematical language used throughout process control design.

  • Lesson 4 • Process Simulation and Loop Testing

    Uses simulation tools to model process dynamics and validate controller designs before plant deployment. Reduces commissioning risk by identifying tuning issues in a virtual environment.

  • Lesson 5 • Advanced Control Strategies

    Covers cascade, ratio, feedforward, and split-range control for complex process interactions. Extends single-loop PID knowledge to multi-variable process scenarios.

Chapter 6See details

Industrial Networking and Communication Protocols

  • Lesson 1 • Network Design and Cybersecurity Basics

    Teaches network segmentation, firewall placement, and patch management for industrial control systems. Establishes a security-aware mindset before students work on connected automation projects.

  • Lesson 2 • Industrial Wireless Networks

    Covers WirelessHART, ISA100, and Wi-Fi standards for industrial environments. Addresses coexistence, reliability, and security challenges unique to wireless automation.

  • Lesson 3 • Fieldbus Technologies

    Compares PROFIBUS, DeviceNet, Modbus, and Foundation Fieldbus in terms of topology and performance. Provides the basis for selecting legacy and modern fieldbus solutions.

  • Lesson 4 • OPC UA and Data Modeling

    Introduces OPC UA architecture, information models, and secure client-server communication. Bridges field-level data to enterprise systems and IIoT platforms.

  • Lesson 5 • Industrial Ethernet Protocols

    Examines PROFINET, EtherNet/IP, EtherCAT, and Modbus TCP for high-speed deterministic communication. Connects Ethernet protocols to modern PLC and drive integration requirements.

Chapter 7See details

SCADA, HMI, and Data Acquisition

  • Lesson 1 • Data Acquisition and Historian Systems

    Explains tag configuration, scan rates, compression algorithms, and historian query methods. Enables students to implement data collection systems that support analytics and reporting.

  • Lesson 2 • SCADA System Architecture

    Describes SCADA components including RTUs, communication servers, and historian databases. Provides the structural knowledge needed to design scalable monitoring solutions.

  • Lesson 3 • Alarm Management and Rationalization

    Covers alarm philosophy, rationalization, and key performance indicators per industry best practices. Addresses alarm flood prevention and operator workload management.

  • Lesson 4 • HMI Screen Design Principles

    Applies human factors and situational awareness principles to create effective operator displays. Directly reduces operator error and improves response time during abnormal situations.

  • Lesson 5 • SCADA Security and Remote Access

    Addresses secure remote access, role-based authentication, and audit logging for SCADA platforms. Integrates cybersecurity practices into operational technology environments.

Chapter 8See details

Robotics and Motion Control Systems

  • Lesson 1 • Robot Programming and Path Planning

    Teaches teach-pendant programming, offline simulation, and path optimization techniques. Enables students to create efficient, collision-free robot programs for assembly and handling tasks.

  • Lesson 2 • Multi-Axis Coordinated Motion

    Covers electronic gearing, cam profiles, and synchronized multi-axis motion using motion controllers. Prepares students to design coordinated motion for packaging and assembly machines.

  • Lesson 3 • Industrial Robot Fundamentals

    Covers robot classifications, kinematics, workspace analysis, and end-effector selection. Establishes the mechanical and spatial understanding needed for robot programming.

  • Lesson 4 • Collaborative Robots and Vision Guidance

    Introduces collaborative robot safety, force-torque sensing, and vision-guided pick-and-place. Extends traditional robot knowledge to flexible, human-adjacent automation applications.

  • Lesson 5 • Servo Drive and Motor Systems

    Explains servo motor types, drive architecture, and closed-loop position and velocity control. Connects motor physics to drive parameter configuration and performance tuning.

Certification

Your valid completion certificate

This course is for you:

  • Electrical technician: ready to move into automation engineering roles.

  • Mechanical engineer: expanding expertise to include control systems and robotics.

  • Recent engineering graduate: bridging the gap between theory and industrial practice.

  • Maintenance professional: aiming to understand and manage automated plant equipment.

  • Career changer: transitioning from IT into operational technology and industrial automation.

  • Process operator: seeking the engineering knowledge to advance into technical roles.

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