Machine Learning Model Deployment with Serverless and Managed Services
Learn to deploy, scale, and monitor machine learning models using AWS Lambda and GCP serverless tools to minimize operational overhead.
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Tungkol sa kursong ito
Bringing machine learning models from a local environment into production can be challenging without the right infrastructure. Utilizing serverless and managed cloud services allows you to deploy scalable models efficiently without managing underlying servers.\n\nThis text-only course guides you from foundational deployment concepts to running machine learning models in production. You will understand how to package your code, configure cloud resources, and set up automated scaling to handle real-world traffic seamlessly.\n\nWhat you'll learn:\n- Understand core MLOps concepts and the lifecycle of machine learning deployments\n- Configure AWS Lambda and GCP serverless functions to run model inference\n- Package machine learning dependencies efficiently using container fundamentals\n- Implement basic observability and monitoring to track model performance and errors\n- Set up API gateways to expose your models as secure, web-accessible endpoints\n- Apply cost-optimization strategies for serverless machine learning workloads\n\nYou will start with essential cloud and deployment definitions before moving on to practical configurations and code-based deployment patterns. The material guides you step-by-step through setting up endpoints, managing dependencies, and ensuring production readiness.\n\nThis course is designed for beginning developers, data scientists, and cloud enthusiasts looking to deploy their first models without deep infrastructure experience. No prior cloud administration knowledge is required.\n\nBegin reading today to transform your local machine learning code into scalable, production-ready cloud APIs.
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