Features

  • Model Serving: Deploy and manage ML models.
  • Auto-Scaling: Automatically scales models based on traffic.
  • Multi-Framework Support: Supports TensorFlow, PyTorch, XGBoost, and more.
  • Canary Rollouts: Allows for gradual model updates.

Benefits

  • Efficiency: Simplifies the deployment process.
  • Scalability: Automatically handles varying workloads.
  • Flexibility: Supports multiple ML frameworks.
  • Reliability: Ensures smooth rollouts and updates.

Use Cases

  • Deploying machine learning models in production.
  • Scaling ML models to handle increased traffic.
  • Performing A/B testing with canary rollouts.
  • Managing multi-framework ML environments.

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