Databricks and AWS

Webinar

Building a Data Lakehouse at DoorDash and Grammarly

A single lakehouse for analysts and data scientists
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Organizations are looking to streamline their data management by melding their data warehouse and data lake into a single data lakehouse. A lakehouse provides a highly performant and reliable single source of data at a lower cost. See how DoorDash and Grammarly have used the Databricks Lakehouse Platform on AWS to:

  • Address multiple data science use cases — including recommendation models, logistics and demand forecasting — as well as fraud detection
  • Enable their business analysts to access dashboards to view business performance and address issues immediately
  • Have a single automated system to manage their data pipelines to support these use cases and more

In this webinar, you’ll learn how a lakehouse:

  • Speeds GTM iteration and enables a more productive, efficient ML team, resulting in increased revenue and profitability
  • Provides a scalable, predictable framework, minimizing risk and lowering TCO by alleviating unnecessary DevOps

This session will also include a demonstration of how you can get started and a live Q&A.

Speakers

Hien Luu

Hien Luu

Head of Machine Learning Platform

DoorDash

Michael Keba

Michael Keba

Data Engineer

Grammarly

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Franco Patano

Sr. Solutions Architect

Databricks