Building Machine Learning Models at Scale with Sparkling Water

Presented by

Elena Boiarskaia, Senior Solutions Engineer at H2O.ai

About this talk

H2O-3 is an open source, in-memory, distributed machine learning platform that is optimized to build machine learning models on big data and easily deploy them in an enterprise environment with a MOJO. Spark is a powerful distributed cluster-computing framework for running large-scale data processing workloads. Sparkling Water combines the best of both worlds, by seamlessly integrating the H2O-3 ML library to run on top of Spark for building fast and accurate predictive models on big data at scale. In this webinar, you will learn about: - Leveraging the power of H2O-3 and Spark to build scalable machine learning models - Embedding Sparkling Water models inside SparkML pipelines - End-to-end Sparkling Water use cases from data preparation to model deployment
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H2O.ai is the maker of H2O, the world's best machine learning platform and Driverless AI, which automates machine learning. H2O is used by over 200,000 data scientists and more than 18,000 organizations globally. H2O Driverless AI does auto feature engineering and can achieve 40x speed-ups on GPUs.