Coursera
Secure AI Model Deployments & Lifecycles

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Coursera

Secure AI Model Deployments & Lifecycles

Starweaver
Renaldi Gondosubroto

Instructors: Starweaver

Included with Coursera Plus

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

Recommended experience

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

Recommended experience

4 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • Execute secure deployment strategies (blue/green, canary, shadow) with traffic controls, health gates, and rollback plans.

  • Implement model registry governance (versioning, lineage, stage transitions, approvals) to enforce provenance and promote-to-prod workflows.

  • Design monitoring triggering runbooks; secure updates via signing + CI/CD policy for auditable releases and controlled rollback.

Details to know

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Recently updated!

December 2025

Assessments

1 assignment¹

AI Graded see disclaimer
Taught in English

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There are 3 modules in this course

In this module, Learners compare rollout patterns, including shadow, canary, and blue/green based on risk, observability, and rollback needs. They then implement a quick canary with AWS Lambda aliases to practice traffic shifting, gating, and instant rollback. Learners will also apply this knowledge in a live canary rollout using AWS Lambda, implementing traffic splitting, gating, and rollback in response to safety or performance regressions.

What's included

4 videos2 readings1 peer review

In this module, learners will design and implement a registry-centered promotion flow for AI models. They will learn to capture versioning and lineage, move model versions through different stages, and attach necessary evidence and approvals at each stage. Learners will then apply this process in a CI/CD pipeline, enforcing security with signed artifacts and SBOM checks to ensure that only verified and approved versions are deployed to production.

What's included

3 videos2 readings1 peer review

In this module, learners will learn how to operate AI services safely in production. They will develop the skills to set up effective monitoring for key metrics such as latency, errors, drift, and safety. Learners will also learn how to interpret these metrics and connect them to actionable operational decisions. Additionally, they will explore secure update practices, including how to use signed artifacts, SBOM-based scanning, CI/CD policy gates, and audit trails to ensure safe, auditable, and controlled releases.

What's included

5 videos1 reading1 assignment2 peer reviews

Instructors

Starweaver
Coursera
459 Courses910,825 learners

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Frequently asked questions

¹ Some assignments in this course are AI-graded. For these assignments, your data will be used in accordance with Coursera's Privacy Notice.