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Better Data Quality Through Observability With Monte Carlo

Better Data Quality Through Observability With Monte Carlo

FromData Engineering Podcast


Better Data Quality Through Observability With Monte Carlo

FromData Engineering Podcast

ratings:
Length:
56 minutes
Released:
Oct 19, 2020
Format:
Podcast episode

Description

In order for analytics and machine learning projects to be useful, they require a high degree of data quality. To ensure that your pipelines are healthy you need a way to make them observable. In this episode Barr Moses and Lior Gavish, co-founders of Monte Carlo, share the leading causes of what they refer to as data downtime and how it manifests. They also discuss methods for gaining visibility into the flow of data through your infrastructure, how to diagnose and prevent potential problems, and what they are building at Monte Carlo to help you maintain your data's uptime.
Released:
Oct 19, 2020
Format:
Podcast episode

Titles in the series (100)

Weekly deep dives on data management with the engineers and entrepreneurs who are shaping the industry