Microsoft

Productionization, Experimentation & MLOps

Microsoft

Productionization, Experimentation & MLOps

 Microsoft

Instructor: Microsoft

What you'll learn

  • Configure production prediction endpoints using Azure Cache for Redis for real-time, low-latency user feature hydration.

  • Architect automated CI/CD retraining and deployment pipelines using Azure ML SDK v2 with canary and blue-green deployment strategies.

  • Implement statistical drift monitoring using the Population Stability Index and Wasserstein Distance over recommendation tensors.

  • Align system telemetry with long-term utility metrics, including Saves, Dwell Time, and Private Shares under production load conditions.

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Assessments

22 assignmentsÂą

AI Graded see disclaimer
Taught in English

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This course is part of the Microsoft Recommender Systems Engineering with LinkedIn 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 11 modules in this course

Design low-latency memory stores that bridge the gap between offline candidate pre-computation and live online prediction serving limits.

What's included

1 video2 readings2 assignments

Connect your live user telemetry streams directly to your feature caches to ensure continuous relevance without interrupting application performance.

What's included

1 video3 readings2 assignments

Eliminate manual handoffs by configuring programmatic pipelines that listen for repository commits and automatically stage trained models for operational serving.

What's included

1 video2 readings2 assignments

Safely transition live prediction traffic from baseline models to updated variants without degrading the user experience.

What's included

1 video2 readings3 assignments

Understand how high-dimensional recommendation tensors degrade over time and apply statistical algorithms to detect input distribution drift before it impacts user utility.

What's included

1 video2 readings2 assignments

Establish automated alert payloads that respond to detected drift by programmatically initiating cloud compute clusters for targeted model retraining.

What's included

1 video3 readings2 assignments

Learn how to read across operational domains, connecting infrastructure latency bottlenecks directly to drops in long-term user engagement and platform utility.

What's included

1 video2 readings2 assignments

Architect resilient systems that dynamically protect themselves during traffic spikes by intelligently reducing candidate pools rather than crashing.

What's included

1 video3 readings2 assignments

Bring together the disparate components of the multi-stage pipeline into a unified, coherent technical design document that outlines the flow from candidate generation to telemetry tracking.

What's included

1 video2 readings2 assignments

Stress-test your architecture by executing integration scripts under simulated loads, tracking end-to-end latency, and defending your configuration trade-offs.

What's included

1 video3 readings2 assignments

Construct and validate a complete production recommendation pipeline within Azure Databricks. You will integrate the feature ingestion worker, continuous integration and continuous deployment (CI/CD) pipeline, drift monitoring loop, and telemetry cockpit into a unified operational framework, proving your readiness to deploy enterprise-grade systems.

What's included

2 readings1 assignment

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Instructor

 Microsoft
446 Courses2,921,180 learners

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Microsoft

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