Deploy TensorFlow Models for Batch Inference on Azure
Learn to set up and manage robust batch inference pipelines for your TensorFlow models on Azure.
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Tungkol sa kursong ito
Many machine learning projects falter at the deployment stage, especially when dealing with large datasets requiring batch processing. Efficiently deploying your TensorFlow models in a production environment is key to realizing their value. This course will equip you with the foundational knowledge and practical skills to confidently deploy, manage, and monitor your TensorFlow models as scalable batch inference endpoints on Azure. You will gain the ability to transform trained models into reliable, automated prediction services. What you'll learn: Understand the lifecycle of machine learning model deployment and MLOps principles. Prepare TensorFlow models for efficient, production-ready inference. Configure and utilize Azure Machine Learning workspaces and compute resources. Implement Azure Batch Endpoints for high-throughput, scheduled model predictions. Practice containerizing TensorFlow models using Docker for consistent deployments. Establish basic monitoring and logging for batch inference jobs on Azure. Explore fundamental CI/CD concepts for automating model deployment pipelines. The course begins with an introduction to model deployment concepts and preparing TensorFlow models. It then guides you through setting up Azure Machine Learning resources, configuring batch endpoints, and implementing robust monitoring. You will also learn about modern deployment practices like containerization and CI/CD fundamentals. This course is designed for beginners in machine learning deployment, data scientists, and developers who want to deploy TensorFlow models for batch inference on Azure. No prior experience with Azure Machine Learning or MLOps is required. Begin your journey to mastering scalable TensorFlow model deployment on Azure.
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2 oras 48 min ng practical content
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