Microsoft

Agentic AI, Security, Governance & Operations

Microsoft

Agentic AI, Security, Governance & Operations

 Microsoft

Instructor: Microsoft

Access provided by Karaganda Medical University

Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Design AI agents and multi-agent systems with tool integration, MCP connectivity, orchestration, and A2A protocols.

  • Design network security, identity controls, and prompt injection defenses for enterprise Azure AI deployments.

  • Design AI governance frameworks with unified access management, audit logging, and responsible AI controls.

  • Build and deploy production-ready AI solutions with CI/CD pipelines, observability, and end-to-end architecture.

Details to know

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Assessments

40 assignments¹

AI Graded see disclaimer
Taught in English

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This course is part of the Microsoft Azure AI Solutions Architect AZ-305 Professional Certificate
When you enroll in this course, you'll also be enrolled in this Professional Certificate.
  • Learn new concepts from industry experts
  • Gain a foundational understanding of a subject or tool
  • Develop job-relevant skills with hands-on projects
  • Earn a shareable career certificate from Microsoft

There are 15 modules in this course

This module develops the skill of designing the core capability architecture of a Foundry-based enterprise AI agent—specifying the tools the agent can invoke, the actions it can execute, how it manages conversation state and memory across turns, and how it integrates with external APIs via MCP—producing a complete agent specification that reflects the functional design of a production enterprise agent.

What's included

1 video2 readings3 assignments

This module develops the skill of designing the operational control architecture for a production enterprise AI agent—specifying escalation thresholds and human handoff logic, content safety guardrails, and human-in-the-loop checkpoints that help ensure the agent operates safely, within its intended scope, and under appropriate human oversight in high-stakes enterprise environments.

What's included

2 videos2 readings3 assignments

This module develops the architectural design skills needed to structure a multi-agent system—defining the orchestrator-specialist topology, assigning agent roles and responsibilities, and specifying the A2A inter-agent communication parameters that govern handoffs. Learners apply these skills to a complex enterprise process that requires coordination among multiple specialist agents.

What's included

2 videos2 readings3 assignments

This module extends the multi-agent topology design from Module 1 into the operational layer—designing the Foundry Workflow logic that orchestrates agent execution, with error handling, retry logic, and observability instrumentation. Learners apply these skills first through a pre-production architecture review coach dialogue, then through a structured workflow failure diagnosis—identifying production gaps, specifying remediations, and communicating findings to an engineering team as a practicing architect would before any enterprise deployment goes live.

What's included

2 videos1 reading3 assignments

This module develops the skill of designing the network security topology for an enterprise Azure AI deployment—specifying private endpoint configuration, virtual network (VNet) integration, Azure Application Gateway with WAF for public-facing endpoints, and DDoS protection—to help prevent unauthorized network access and protect Azure AI services from network-level threats.

What's included

2 videos2 readings3 assignments

This module develops the skill of designing the identity and access control architecture for an enterprise Azure AI deployment—specifying managed identity for service-to-service authentication, RBAC role assignments for each stakeholder group using least-privilege principles—and designing the adversarial AI defense architecture using Microsoft Defender for Cloud AI threat protection and Azure AI Content Safety to protect against prompt injection and other AI-specific attack patterns.

What's included

2 videos2 readings3 assignments

This section teaches you to design governance frameworks that provide centralized control over AI model access while enabling appropriate use across the enterprise.

What's included

2 videos2 readings2 assignments

This section teaches you to design audit logging and traceability controls that meet compliance requirements and enable effective incident investigation.

What's included

1 video3 readings3 assignments

This module develops the evaluative skill of systematically applying Microsoft's six responsible AI principles to a real AI solution design: identifying gaps against each principle and assessing how severe those gaps are in a high-stakes deployment context.

What's included

2 videos2 readings2 assignments

This module develops the skill of designing a complete responsible AI governance framework—translating identified gaps in an AI solution's responsible AI review into a structured governance architecture with approval workflows, usage policies, compliance controls, audit logging, and human oversight checkpoints.

What's included

2 videos2 readings4 assignments

This module develops the evaluative skill of assessing Azure AI deployment options—managed online endpoints, serverless API deployment, and containerized deployment—against the specific scalability, cost, and latency requirements of a production AI solution scenario, and producing a documented deployment option recommendation that justifies the selection and addresses alternatives.

What's included

1 video2 readings2 assignments

This module develops the skill of designing the full deployment architecture for a production Azure AI solution—specifying the environment strategy, designing the CI/CD pipeline with automated evaluation gates and governance checkpoints, and configuring the managed endpoint deployment—producing the deployment runbook that governs how the solution moves from development through production.

What's included

1 video2 readings4 assignments

This module teaches you to design GenAI observability architectures with distributed tracing that provides visibility across the complete request path from user to model and back.

What's included

2 videos2 readings2 assignments

This module teaches you to configure production dashboards, set up continuous evaluation on live traffic, and implement alerting for quality and safety metrics.

What's included

1 video3 readings2 assignments1 ungraded lab

Learners produce a portfolio-ready Agentic AI, Security, Governance, and Operations Architecture document for a provided enterprise scenario integrating agent design, multi-agent orchestration, security architecture, AI governance framework, responsible AI assessment, deployment strategy, and observability stack into a single coherent production architecture that mirrors the deliverable a practicing Azure AI Solutions Architect would produce for an enterprise agentic AI platform engagement.

What's included

3 readings1 assignment

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Instructor

 Microsoft
464 Courses2,956,032 learners

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