Master the critical skills needed to maintain AI systems in production through this hands-on course designed for DevOps engineers, ML engineers, and SREs. As AI deployments grow more complex, the ability to patch safely, recover from incidents quickly, and maintain operational health becomes essential.

您将学到什么
Apply systematic patching strategies to AI models, ML frameworks, and dependencies while maintaining service availability and model performance.
Conduct blameless post-mortems for AI incidents using structured frameworks to identify root causes, document lessons learned, and prevent recurrence
Set up monitoring, alerts, and recovery to detect and resolve model drift, performance drops, and failures early.
您将获得的技能
- Patch Management
- Incident Response
- Application Deployment
- AI Security
- Problem Management
- Incident Management
- MLOps (Machine Learning Operations)
- System Monitoring
- Responsible AI
- Dependency Analysis
- Anomaly Detection
- Automation
- Site Reliability Engineering
- Disaster Recovery
- Computer Security Incident Management
- Continuous Monitoring
您将学习的工具
要了解的详细信息

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作业
1 项作业
授课语言:英语(English)
最近已更新!
January 2026
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