Machine Learning Engineering with MLflow
Manage the end-to-end machine learning life cycle with MLflow
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ISBN
9781800560796
Bindwijze
Paperback
Taal
Engels
Auteur
Uitgeverij
Packt Publishing Limited
Jaar van uitgifte
2021
Aantal pagina's
248
Waar gaat het over?
Machine Learning Engineering with MLflow is a step-by-step guide that will have you up and running, and productive in no time with MLflow using the most effective machine learning engineering approach. You will also learn how to scale MLflow in big data environments and for high computing demands.
Get up and running, and productive in no time with MLflow using the most effective machine learning engineering approach Key Features
- Explore machine learning workflows for stating ML problems in a concise and clear manner using MLflow
- Use MLflow to iteratively develop a ML model and manage it
- Discover and work with the features available in MLflow to seamlessly take a model from the development phase to a production environment
- Develop your machine learning project locally with MLflow's different features
- Set up a centralized MLflow tracking server to manage multiple MLflow experiments
- Create a model life cycle with MLflow by creating custom models
- Use feature streams to log model results with MLflow
- Develop the complete training pipeline infrastructure using MLflow features
- Set up an inference-based API pipeline and batch pipeline in MLflow
- Scale large volumes of data by integrating MLflow with high-performance big data libraries
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