
Industrial Automation Project Engineering Course
Master every phase of industrial automation project engineering, from instrumentation design and PLC programming to functional safety and system commissioning. This course gives you the technical depth and project management skills that employers demand on real automation projects. Build the expertise to lead multi-disciplinary teams, deliver compliant systems, and drive measurable results on the plant floor.
What you will learn:
You will gain a thorough understanding of automation system architectures, instrumentation and control design, and industrial networking. You will learn to program PLCs and DCS platforms using IEC 61131-3 languages and apply functional safety standards including SIL determination and SIS design. The course covers project lifecycle management, risk assessment, and scope control so you can keep complex projects on schedule and within budget. You will also explore advanced control strategies, industrial cybersecurity, IIoT integration, and digital twin technologies. By the end, you will be equipped to engineer, commission, and hand over fully operational industrial automation systems.
How you study in a practical way Industrial Automation Project Engineering Course
How you practice Industrial Automation Project Engineering 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 Industrial Automation
Foundations of Industrial Automation
Lesson 1 • Automation System Architectures
Covers hierarchical, distributed, and hybrid control architectures. Connects system structure to project scope and design decisions.
Lesson 2 • Safety and Regulatory Framework
Outlines functional safety standards, risk categories, and compliance obligations. Anchors safety thinking at the start of the learning journey.
Lesson 3 • Automation Concepts and Terminology
Defines automation, control theory basics, and common industry vocabulary. Establishes shared language used throughout the entire course.
Lesson 4 • Core Hardware Components
Identifies sensors, actuators, controllers, and drives used in automation systems. Provides hardware context for later programming and integration topics.
Lesson 5 • Software and Communication Basics
Introduces SCADA, HMI, and industrial communication protocols. Prepares students for deeper integration work in later chapters.
Chapter 2HideHide detailsSee detailsProject Lifecycle and Management Fundamentals
Project Lifecycle and Management Fundamentals
Lesson 1 • Automation Project Phases Overview
Maps the full project lifecycle from feasibility through handover. Gives students a roadmap that frames all subsequent technical content.
Lesson 2 • Scope Definition and Requirements
Teaches how to capture, document, and baseline project scope and requirements. Prevents scope creep and misalignment between stakeholders.
Lesson 3 • Risk Management in Automation Projects
Introduces risk identification, assessment, and mitigation planning. Equips students to proactively manage technical and schedule risks.
Lesson 4 • Resource and Budget Management
Addresses cost estimation, resource allocation, and budget control for automation projects. Builds financial literacy needed for project engineering roles.
Lesson 5 • Work Breakdown and Scheduling
Covers WBS creation, activity sequencing, and schedule development. Connects planning tools to realistic automation project timelines.
Chapter 3HideHide detailsSee detailsInstrumentation and Control Design
Instrumentation and Control Design
Lesson 1 • P&ID Development and Standards
Explains P&ID symbology, drawing conventions, and review processes. P&IDs are the central design document referenced throughout the project.
Lesson 2 • Instrument Selection and Sizing
Teaches criteria for selecting and sizing instruments to match process conditions. Directly supports accurate instrument data sheet preparation.
Lesson 3 • Instrumentation Documentation Package
Assembles the full instrumentation deliverable set including indexes, hook-up drawings, and calibration records. Prepares students for engineering deliverable management.
Lesson 4 • Process Measurement Principles
Covers measurement of pressure, temperature, flow, and level using industrial instruments. Provides the physical basis for instrument selection decisions.
Lesson 5 • Control Loop Design
Covers PID control loop configuration, tuning concepts, and loop documentation. Bridges instrumentation selection to PLC and DCS programming tasks.
Chapter 4HideHide detailsSee detailsPLC and DCS Programming Essentials
PLC and DCS Programming Essentials
Lesson 1 • DCS Configuration and Control Modules
Explains DCS architecture, control module configuration, and continuous process control strategies. Complements PLC skills for process industry applications.
Lesson 2 • Program Structure and Modularity
Teaches modular program design using function blocks, libraries, and naming conventions. Modular code reduces errors and simplifies maintenance.
Lesson 3 • IEC 61131-3 Programming Languages
Introduces all five IEC 61131-3 languages with emphasis on ladder, structured text, and function block diagram. Establishes the programming foundation for all control tasks.
Lesson 4 • Analog and Digital I/O Handling
Covers I/O addressing, scaling, filtering, and fault detection for analog and digital signals. Connects hardware wiring to software signal processing.
Lesson 5 • Program Testing and Simulation
Introduces offline simulation, factory acceptance testing (FAT), and structured debugging methods. Validates control logic before field deployment.
Chapter 5HideHide detailsSee detailsIndustrial Networking and System Integration
Industrial Networking and System Integration
Lesson 1 • SCADA and HMI Integration
Covers OPC-UA data exchange, tag configuration, and HMI screen development for operator interfaces. Integrates field data into supervisory visualization layers.
Lesson 2 • Industrial Network Topologies
Covers star, ring, bus, and mesh topologies and their suitability for automation environments. Topology choice directly affects reliability and maintenance.
Lesson 3 • Fieldbus and Industrial Ethernet Protocols
Compares major fieldbus and industrial Ethernet protocols for device-level communication. Enables informed protocol selection for specific project requirements.
Lesson 4 • MES and ERP Connectivity
Explains data flow between control systems and manufacturing execution and enterprise resource systems. Supports digital transformation and production reporting goals.
Lesson 5 • Network Design and Infrastructure
Addresses switch configuration, cable selection, and network segmentation for industrial use. Proper infrastructure design ensures deterministic communication.
Chapter 6HideHide detailsSee detailsFunctional Safety Engineering
Functional Safety Engineering
Lesson 1 • SIL Determination and Verification
Teaches SIL assignment, PFD calculation, and architectural constraints for safety functions. Ensures designed systems meet required integrity levels.
Lesson 2 • Functional Safety Standards and Lifecycle
Introduces the functional safety lifecycle, key standards for process and machinery sectors, and management responsibilities. Frames all subsequent safety engineering tasks.
Lesson 3 • Safety Instrumented System Design
Covers SIS hardware selection, logic solver configuration, and safety function documentation. Translates risk assessment outputs into engineered safety solutions.
Lesson 4 • Hazard and Risk Assessment
Covers HAZOP, LOPA, and risk graph methods for identifying hazards and determining required risk reduction. Outputs feed directly into SIL determination.
Lesson 5 • Safety Validation and Proof Testing
Addresses safety validation planning, proof test procedures, and functional safety assessment. Confirms that installed SIS meets design intent before startup.
Chapter 7HideHide detailsSee detailsCommissioning, Startup, and Handover
Commissioning, Startup, and Handover
Lesson 1 • Site Acceptance Testing
Defines SAT scope, test case execution, and deficiency management in the field environment. SAT confirms that installed systems match the approved design.
Lesson 2 • Pre-Startup Safety Review
Explains PSSR methodology, checklist development, and action item closure before first startup. PSSR is a critical safety gate in the commissioning process.
Lesson 3 • Startup and Performance Testing
Covers cold and hot startup sequences, performance test protocols, and process optimization during initial operation. Validates system performance against design specifications.
Lesson 4 • Project Handover and Closeout
Addresses as-built documentation, operator training delivery, and formal handover to operations. Ensures the client receives a complete and operable system.
Lesson 5 • Pre-Commissioning Activities
Covers mechanical completion checks, loop checks, and instrument calibration verification before energization. Systematic pre-commissioning prevents costly startup delays.
Chapter 8HideHide detailsSee detailsAdvanced Control and Optimization Strategies
Advanced Control and Optimization Strategies
Lesson 1 • Energy and Asset Optimization
Addresses energy monitoring, demand management, and asset performance optimization strategies. Delivers measurable operational cost reductions through control improvements.
Lesson 2 • Continuous Improvement Programs
Introduces structured improvement methodologies applied to automation systems and control performance. Sustains gains achieved during commissioning and optimization phases.
Lesson 3 • Model Predictive Control Fundamentals
Introduces MPC principles, process modeling, and constraint handling for multivariable processes. MPC delivers significant performance gains over single-loop strategies.
Lesson 4 • Advanced PID and Cascade Control
Extends basic PID to cascade, ratio, and feedforward configurations for complex process interactions. Builds on foundational control loop skills from earlier chapters.
Lesson 5 • Statistical Process Control
Covers control charts, process capability indices, and SPC integration with automation systems. Connects real-time data to quality management objectives.
Your valid completion certificate
This course is for you:
Instrumentation technician: ready to move into an engineering and design role.
Electrical engineer: transitioning from power systems into industrial automation projects.
Process engineer: wanting to own control system design on capital projects.
Recent engineering graduate: building practical automation project skills beyond the classroom.
Automation integrator: formalizing project delivery knowledge to handle larger client engagements.
Maintenance engineer: aiming to cross over into project engineering on plant upgrades.
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