Functional Safety Industrial Cybersecurity Training Course

Coordinate hazards, cyber threats, controls, changes, and assurance evidence across industrial automation teams.
Functional Safety Industrial Cybersecurity Training Course

At a glance

Duration
5 days
Format
Classroom
Cities
Geneva, Istanbul, Tashkent, Tbilisi, Langkawi, Madrid and more
Next session
25 – 29 October 2026, Geneva
Average fee
5,800 €

Overview

Functional Safety and Industrial Cybersecurity Integration Training Course is a five-day intermediate course for control engineers, safety practitioners, OT security teams, automation engineers, risk managers, and assurance functions who leave with a Joint Safety-Cyber Assurance Case. Participants connect system boundaries, hazard and threat scenarios, coordinated requirements, risk treatment, change control, incident implications, and assurance evidence across industrial control environments. The course applies IEC TR 63069, IEC 61508, IEC 62443, and OT security guidance without offering certification. Agile Leaders Training Center develops safety-security integration practice.

Who Should Attend

  • Control engineering functions responsible for industrial automation design and operation
  • Functional safety functions responsible for hazards, requirements, and assurance evidence
  • OT cybersecurity functions responsible for threats, zones, conduits, and controls
  • Automation maintenance functions responsible for changes and system integrity
  • Risk and assurance functions responsible for coordinated industrial decisions

The course assumes participants can interpret industrial control architectures and risk records, and leaves out detailed safety calculations, product certification, penetration testing, and generic enterprise security administration.

Departments and Industries

The course supports departments and industries operating safety-related industrial automation and control systems.

  • Process manufacturing and chemical operations
  • Energy, utilities, and pipeline control
  • Industrial machinery and automated production
  • Water and environmental process control
  • Engineering assurance and asset maintenance

Learning Objectives

By the end of this course, participants will be able to:

  • Apply shared safety-security system boundaries
  • Analyze linked hazard and cyber threat scenarios
  • Build coordinated safety and cybersecurity requirements
  • Evaluate controls for safety and security interactions
  • Prioritize change and incident assurance evidence
  • Build a Joint Safety-Cyber Assurance Case

Course Agenda

Day 1: Establish the Shared System Context

  • IEC TR 63069 Integration Framework Map
  • IEC 61508 Safety Lifecycle Context Diagram
  • IEC 62443 Industrial Security Lifecycle Map
  • Shared System Boundary and Asset Register
  • Safety-Security Roles and Decision Matrix

Day 2: Connect Hazards and Threats

  • Hazard and Cyber Threat Scenario Worksheet
  • Unsafe Control Action and Attack Path Map
  • Consequence, Likelihood, and Exposure Matrix
  • Zone and Conduit Interaction Diagram
  • Combined Risk Assumption Register

Day 3: Coordinate Requirements and Controls

  • Safety and Security Requirement Traceability Matrix
  • Defense-in-Depth and Safety Function Interaction Table
  • Control Conflict and Dependency Analysis Method
  • Risk Treatment Selection Record
  • Verification Responsibility and Evidence Plan

Day 4: Manage Change and Incidents

  • Safety-Security Change Impact Checklist
  • Configuration Baseline and Approval Record
  • Cyber Incident Safety Consequence Decision Tree
  • Temporary Control and Compensating Measure Log
  • Recovery Validation and Assurance Evidence Pack

Day 5: Practice Joint Assurance

  • Exercise: Define Shared Industrial System Boundaries
  • Exercise: Link Hazard and Threat Scenarios
  • Exercise: Reconcile Conflicting Safety and Security Controls
  • Exercise: Assess a Change and Incident Evidence Trail
  • Capstone: Joint Safety-Cyber Assurance Case

Practical Exercises

The course uses suggested activities based on process plants, utilities, automated production, and water-control systems.

  • Suggested activity: identify shared assets, boundaries, assumptions, and decision owners.
  • Suggested activity: connect a cyber attack path with hazardous operational consequences.
  • Suggested activity: compare control options for security benefit and safety interaction.
  • Suggested activity: assemble requirements, treatment decisions, change records, and evidence into an assurance case.

FAQs

Who suits functional safety and industrial cybersecurity integration training, and what does it assume?

Control engineers, safety practitioners, OT security teams, automation engineers, risk managers, and assurance functions suit the training; it assumes they can interpret control architectures and risk records.

How does safety-security integration differ from generic SCADA security training?

Safety-security integration coordinates hazards, threats, safety functions, cyber controls, changes, incidents, and assurance evidence, while generic SCADA security training concentrates mainly on protecting control-system assets and communications.

Why must functional safety and cybersecurity requirements be coordinated?

Requirements must be coordinated because a security control can affect availability or response timing, while a safety design choice can create access, monitoring, maintenance, or recovery dependencies.

How should industrial teams assess a cybersecurity change for safety impact?

Industrial teams should trace the change to system boundaries, hazards, threats, safety functions, operational modes, dependencies, validation needs, approvals, and residual assumptions before implementation.

What belongs in a joint safety-cyber assurance case?

A joint assurance case should contain scope, claims, assumptions, linked scenarios, coordinated requirements, treatment decisions, verification evidence, change records, incident implications, gaps, ownership, and review actions.

Conclusion

Participants take back a Joint Safety-Cyber Assurance Case linking boundaries, hazards, threats, requirements, controls, changes, incidents, and evidence. It changes separate safety and cybersecurity records into a coordinated industrial assurance workflow. The case supports traceable decisions across engineering, operations, maintenance, cybersecurity, risk, and assurance functions.

credits: 5 credit per day

Course Mode: full-time

Provider: Agile Leaders Training Center

Showing 21-40 of 74 events
Image Location Dates Duration Mode Price Actions
Zoom Zoom Week 04, 2027
25 – 29 January 2027
5 Days Online €1,500
Lisbon Lisbon Week 04, 2027
25 – 29 January 2027
5 Days Onsite €5,700
Amman Amman Week 05, 2027
7 – 11 February 2027
5 Days Onsite €4,100
Madrid Madrid Week 06, 2027
8 – 12 February 2027
5 Days Onsite €5,700
Prague Prague Week 07, 2027
15 – 19 February 2027
5 Days Onsite €6,000
Amsterdam Amsterdam Week 08, 2027
22 – 26 February 2027
5 Days Onsite €5,700
Manama Manama Week 08, 2027
28 February – 4 March 2027
5 Days Onsite €4,700
Dubai Dubai Week 09, 2027
1 – 5 March 2027
5 Days Onsite €4,500
Cape town Cape town Week 09, 2027
7 – 11 March 2027
5 Days Onsite €4,500
Sharm El-Sheikh Sharm El-Sheikh Week 10, 2027
8 – 12 March 2027
5 Days Onsite €4,100
Trabzon Trabzon Week 10, 2027
14 – 18 March 2027
5 Days Onsite €6,800
Milan Milan Week 11, 2027
15 – 19 March 2027
5 Days Onsite €5,700
Bangkok Bangkok Week 11, 2027
21 – 25 March 2027
5 Days Onsite €6,000
Kuala Lumpur Kuala Lumpur Week 12, 2027
22 – 26 March 2027
5 Days Onsite €5,200
Barcelona Barcelona Week 13, 2027
29 March – 2 April 2027
5 Days Onsite €5,700
Nice Nice Week 13, 2027
29 March – 2 April 2027
5 Days Onsite €5,700
Cairo Cairo Week 14, 2027
5 – 9 April 2027
5 Days Onsite €4,100
Rome Rome Week 15, 2027
12 – 16 April 2027
5 Days Onsite €5,700
Munich Munich Week 15, 2027
12 – 16 April 2027
5 Days Onsite €5,700
Amsterdam Amsterdam Week 16, 2027
19 – 23 April 2027
5 Days Onsite €5,700

Frequently asked questions

What does this course cover?

OverviewFunctional Safety and Industrial Cybersecurity Integration Training Course is a five-day intermediate course for control engineers, safety practitioners, OT security teams, automation engineers, risk managers, and assurance functions who leave with a Joint Safety-Cyber Assurance Case. Participants connect system boundaries, hazard and threat scena…

Are training dates available?

Yes. Available dates and destinations are listed in the course dates section on this page.

How can I register?

Choose an available date on this page and complete the registration form, or send a programme enquiry.

Can I download the course brochure?

Yes. Use the brochure download link provided on this page.

This course by city