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Duration 14 hours
Course Outline
Introduction to Kubeflow
- Grasping the Kubeflow mission and architectural design
- Overview of core components and the broader ecosystem
- Deployment strategies and platform functionalities
Interacting with the Kubeflow Dashboard
- Navigating the user interface
- Handling notebooks and workspaces
- Connecting storage and data sources
Basics of Kubeflow Pipelines
- Pipeline architecture and component design
- Creating pipelines using the Python SDK
- Running, scheduling, and tracking pipeline executions
Training ML Models on Kubeflow
- Patterns for distributed training
- Leveraging TFJob, PyTorchJob, and other operators
- Resource optimization and autoscaling within Kubernetes
Serving Models with Kubeflow
- Introduction to KFServing and KServe
- Deploying models with custom runtimes
- Controlling revisions, scaling, and traffic distribution
Oversight of ML Workflows on Kubernetes
- Version control for data, models, and artifacts
- Integrating CI/CD into ML pipelines
- Security protocols and role-based access control
Best Practices for Production ML
- Creating dependable workflow structures
- Implementing observability and monitoring
- Resolving common Kubeflow challenges
Advanced Concepts (Optional)
- Multi-tenant Kubeflow configurations
- Hybrid and multi-cluster deployment setups
- Enhancing Kubeflow with custom components
Wrap-up and Future Steps
Requirements
- A solid grasp of containerized applications
- Hands-on experience with basic command-line operations
- Knowledge of fundamental Kubernetes concepts
Intended Audience
- Machine learning practitioners
- Data scientists
- DevOps teams new to the Kubeflow platform
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