Teilnehmen Anmelden

Ihre Kompetenzen in der Google Cloud Console anwenden

Mhamed Souissi

Mitglied seit 2023

Silver League

12110 Punkte
Machine Learning Operations (MLOps): Getting Started Earned Dez 9, 2023 EST
Feature Engineering Earned Dez 3, 2023 EST
Build, Train and Deploy ML Models with Keras on Google Cloud Earned Nov 26, 2023 EST
Launching into Machine Learning Earned Okt 28, 2023 EDT

This course introduces participants to MLOps tools and best practices for deploying, evaluating, monitoring and operating production ML systems on Google Cloud. MLOps is a discipline focused on the deployment, testing, monitoring, and automation of ML systems in production. Machine Learning Engineering professionals use tools for continuous improvement and evaluation of deployed models. They work with (or can be) Data Scientists, who develop models, to enable velocity and rigor in deploying the best performing models.

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This course explores the benefits of using Vertex AI Feature Store, how to improve the accuracy of ML models, and how to find which data columns make the most useful features. This course also includes content and labs on feature engineering using BigQuery ML, Keras, and TensorFlow.

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This course covers building ML models with TensorFlow and Keras, improving the accuracy of ML models and writing ML models for scaled use.

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The course begins with a discussion about data: how to improve data quality and perform exploratory data analysis. We describe Vertex AI AutoML and how to build, train, and deploy an ML model without writing a single line of code. You will understand the benefits of Big Query ML. We then discuss how to optimize a machine learning (ML) model and how generalization and sampling can help assess the quality of ML models for custom training.

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