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AI Agent Security & Governance
Role Play
New
121 students

AI Agent Security & Governance

Build practical controls, evaluations, and governance workflows for autonomous, tool-using AI agents.
Last updated 8/2026
English
English [Auto],

What you'll learn

  • Distinguish chatbot risk, agent risk, tool risk, and long-horizon cyber risk
  • Build an AI agent risk register and classify agent capabilities by impact
  • Map agent risks to NIST AI RMF, ISO/IEC 42001, and the OWASP LLM Top 10
  • Design tool-permission, sandboxing, and least-privilege controls for autonomous agents
  • Create human-in-the-loop approval gates for high-risk actions
  • Define incident response for agent misuse, data leakage, and unsafe tool execution
  • Evaluate AI vendors using model cards, certifications, audit logs, and contracts
  • Produce a complete, review-ready AI governance pack for one agent

Course content

10 sections55 lectures6h 40m total length
  • Welcome & Course Roadmap6:19
  • Chatbots vs Agents vs Workflows vs Autonomous Systems6:21
  • Short-Horizon vs Long-Horizon Tasks6:41
  • The Five Autonomy Amplifiers6:58
  • Containment Failure as a Risk Pattern6:58
  • Meet Meridian's Agents + Classify Five AI Systems7:06
  • Section 1 Quiz: Why AI Agents Change the Risk Model

Requirements

  • A basic understanding of generative AI and everyday business risk
  • No coding required — optional labs use simple diagrams and control templates

Description

This course contains the use of artificial intelligence.

Autonomous AI agents don't just answer questions — they take multi-step actions with real tools, real data, and real consequences. That shift from chatbot risk to agent risk is where most governance programs fall short. This course closes that gap with a hands-on, practitioner-focused operating model for securing and governing AI agents in real organizations.

You'll work through one realistic company, Meridian Commerce, and its three agents, building a complete governance pack step by step: a capability inventory, an agentic-AI risk register, a tool-permission matrix, a control matrix, an evaluation checklist, an incident-response playbook, and an executive one-pager. Every risk is mapped to recognized framework language from the NIST AI Risk Management Framework, ISO/IEC 42001, and the OWASP Top 10 for LLM Applications.

Across 10 sections you'll learn to threat-model agents (prompt injection, tool misuse, data exfiltration, reward hacking, sandbox escape), design least-privilege and human-approval controls, test them with capability and safety evaluations, monitor agents at runtime with kill-switches and incident playbooks, run vendor due diligence, and stand up a lightweight governance operating model. No coding is required — optional technical labs use diagrams and control templates.

By the end, you'll be able to design, assess, approve, monitor, and govern AI agent deployments with confidence, and you'll walk away with a board-ready governance pack you can apply immediately.

Who this course is for:

  • AI product managers, compliance officers, and GRC professionals
  • Cybersecurity analysts and internal auditors governing AI systems
  • Startup founders and business leaders deploying AI agents
  • Technical practitioners who need practical AI governance literacy