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11

Machine Learning Operations (MLOps): Getting Started

11

Machine Learning Operations (MLOps): Getting Started

4 Stunden 30 Minuten Mittelstufe

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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info
Kursinformationen
Ziele
  • Identify and use core technologies required to support effective MLOps.
  • Adopt the best CI/CD practices in the context of ML systems.
  • Configure and provision Google Cloud architectures for reliable and effective MLOps environments.
  • Implement reliable and repeatable training and inference workflows.
Voraussetzungen
Completed Machine Learning with Google Cloud or have equivalent experience
Zielgruppe
Data Scientists looking to quickly go from machine learning prototype to production to deliver business impact. Software Engineers looking to develop Machine Learning Engineering skills. ML Engineers who want to adopt Google Cloud.
Verfügbare Sprachen
English, français, 한국어, português (Brasil), español (Latinoamérica) und 日本語

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Sie können jetzt schneller ein Skill-Logo erwerben, da Sie dafür nicht den gesamten Kurs absolvieren müssen. Wenn Sie sich sicher fühlen, können Sie direkt zum Challenge-Lab wechseln.

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