Most machine learning models fail in production not due to poor algorithms, but from inadequate deployment practices, unmonitored performance drift, and missing operational safeguards. This course equips you with the MLOps and site reliability engineering skills to deploy generative AI systems safely, automate model lifecycle management, and maintain peak performance in production environments.

Deploying and Maintaining Production AI Systems
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您将学到什么
Build deployment orchestration workflows with canary releases, automated rollbacks, and dependency analysis to prevent production failures.
Automate ML model lifecycle management using CI/CD pipelines with governance compliance checks and drift-triggered retraining mechanisms.
Implement system validation and performance optimization frameworks that analyze deployment dependencies, benchmark targets, and correlate metrics.
Design observability systems that monitor GenAI performance using integrated dashboards, alert tuning, and distributed tracing across logs.
您将获得的技能
- Release Management
- System Monitoring
- Data-Driven Decision-Making
- Cloud Platforms
- Automation
- Performance Tuning
- Application Deployment
- Application Performance Management
- MLOps (Machine Learning Operations)
- Responsible AI
- Continuous Deployment
- Site Reliability Engineering
- Performance Analysis
- Continuous Monitoring
- CI/CD
- Dependency Analysis
要了解的详细信息
了解顶级公司的员工如何掌握热门技能

积累 Machine Learning 领域的专业知识
本课程是 GenAI Ops: Running Powerful Generative AI Systems 专业证书 专项课程的一部分
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