Serverless Machine Learning With Amazon Redshift Ml Create Train And Deploy Machine Learning Models Using Familiar Sql Commands(1st Edition)

Authors:

Debu Panda ,Phil Bates ,Bhanu Pittampally ,Sumeet Joshi ,Colin Mahony

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ISBN: 1804619280, 978-1804619285

Book publisher: Packt Publishing

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Book Price $0 : Supercharge And Deploy Amazon Redshift Serverless, Train And Deploy Machine Learning Models Using Amazon Redshift ML, And Run Inference Queries At ScaleKey FeaturesLeverage Supervised Learning To Build Binary Classification, Multi-class Classification, And Regression ModelsLearn To Use Unsupervised Learning Using The K-means Clustering MethodMaster The Art Of Time Series Forecasting Using Redshift MLPurchase Of The Print Or Kindle Book Includes A Free PDF EBookBook DescriptionAmazon Redshift Serverless Enables Organizations To Run Petabyte-scale Cloud Data Warehouses Quickly And In A Cost-effective Way, Enabling Data Science Professionals To Efficiently Deploy Cloud Data Warehouses And Leverage Easy-to-use Tools To Train Models And Run Predictions. This Practical Guide Will Help Developers And Data Professionals Working With Amazon Redshift Data Warehouses To Put Their SQL Knowledge To Work For Training And Deploying Machine Learning Models. The Book Begins By Helping You To Explore The Inner Workings Of Redshift Serverless As Well As The Foundations Of Data Analytics And Types Of Data Machine Learning. With The Help Of Step-by-step Explanations Of Essential Concepts And Practical Examples, Youâ??ll Then Learn To Build Your Own Classification And Regression Models. As You Advance, Youâ??ll Find Out How To Deploy Various Types Of Machine Learning Projects Using Familiar SQL Code, Before Delving Into Redshift ML. In The Concluding Chapters, Youâ??ll Discover Best Practices For Implementing Serverless Architecture With Redshift. By The End Of This Book, Youâ??ll Be Able To Configure And Deploy Amazon Redshift Serverless, Train And Deploy Machine Learning Models Using Amazon Redshift ML, And Run Inference Queries At Scale.What You Will LearnUtilize Redshift Serverless For Data Ingestion, Data Analysis, And Machine LearningCreate Supervised And Unsupervised Models And Learn How To Supply Your Own Custom ParametersDiscover How To Use Time Series Forecasting In Your Data WarehouseCreate A SageMaker Endpoint And Use That To Build A Redshift ML Model For Remote InferenceFind Out How To Operationalize Machine Learning In Your Data WarehouseUse Model Explainability And Calculate Probabilities With Amazon Redshift MLWho This Book Is ForData Scientists And Machine Learning Developers Working With Amazon Redshift Who Want To Explore Its Machine-learning Capabilities Will Find This Definitive Guide Helpful. A Basic Understanding Of Machine Learning Techniques And Working Knowledge Of Amazon Redshift Is Needed To Make The Most Of This Book.Table Of ContentsIntroduction To Redshift ServerlessData Loading And Analytics On Redshift ServerlessApplying Machine Learning In Your Data Warehouse Leveraging Amazon Redshift Machine Learning Building Your First Machine Learning ModelBuilding Classification ModelsBuilding Regression ModelsBuilding Unsupervised Models With K-Means ClusteringDeep Learning With Redshift MLCreating Custom ML Models With XGBoostBring Your Own Models For In Database InferenceTime-Series Forecasting In Your Data WarehouseOperationalizing And Optimizing Amazon Redshift ML Models