Running AI workloads reliably across data centers, Kubernetes clusters, and resource-constrained edge devices requires more than container basics. This course builds the skills to deploy, optimize, and manage containerized inference services from cloud to edge at scale.

Container & Edge Orchestration

Container & Edge Orchestration
This course is part of Microsoft Hybrid and Multicloud AI & Edge Infrastructure Professional Certificate

Instructor: Microsoft
What you'll learn
Deploy containerized inference services to AKS with Helm; trace latency outliers using OpenTelemetry and Jaeger.
Build minimal Docker images with multi-stage builds and right-size Kubernetes pod resource requests and limits.
Configure Azure IoT Edge to run ONNX models on industrial gateways with offline buffering and evaluate device-to-cloud protocol options.
Implement resilient gRPC communication with retry and back-off logic; apply Blue-Green deployments on AKS and own rollback criteria and SLI threshold
Skills you'll gain
- Containerization
- Cloud Deployment
- Cloud-Native Computing
- MLOps (Machine Learning Operations)
- Performance Tuning
- Application Deployment
- Information Technology
- Computer Science
- Site Reliability Engineering
- Infrastructure as Code (IaC)
- Cloud Computing
- Application Performance Management
- Distributed Computing
- Software Development
- Capacity Management
Tools you'll learn
Details to know

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September 2026
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