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The lifecycle of a machine learning model only begins once it's in production. In this talk we provide a practical deep dive on best practices, principles, patterns and techniques around production monitoring of machine learning models. We will cover standard microservice monitoring techniques applied into deployed machine learning models, as well as more advanced paradigms to monitor machine learning models through concept drift, outlier detector and explainability. We'll dive into a hands-on example, where we will train an image classification machine learning model from scratch, deploy it as a microservice in Kubernetes, and introduce advanced monitoring components as architectural patterns with hands-on examples. These monitoring techniques will include AI Explainers, Outlier Detectors, Concept Drift detectors, and Adversarial Detectors. We will also be understanding high-level architectural patterns that abstract these complex and advanced monitoring techniques into infrastructural components that will enable for scale, introducing the standardized interfaces required for us to enable monitoring across hundreds or thousands of heterogeneous machine learning models. → To watch more videos like this, visit https://aiplus.training ← Do You Like This Video? Share Your Thoughts in Comments Below Also, You can visit our website and choose the nearest ODSC Event to attend and experience all our Trainings and Workshops: https://odsc.com/california/ https://odsc.com/apac/ Sign up for the newsletter to stay up to date with the latest trends in data science: https://opendatascience.com/newsletter/ Follow Us Online! • Facebook: / opendatasci • Instagram: / odsc • Blog: https://opendatascience.com/ • LinkedIn: / open-data-science • Twitter: / odsc