Artificial intelligence depends on its ability to draw insights from massive datasets, but size alone isn’t the goal.

This week on Feds At the Edge, our panel of experts explore how smarter data management can make AI faster, more efficient, and more reliable by focusing on clean, well-labeled, and right-sized information.

Years ago, scientists dreamed of capturing data from sources as vast as satellites and as precise as atomic sensors. That dream is now reality, and today’s challenge is ensuring that this flood of data is organized and manageable.

Thane Price of Idaho National Laboratory shares how reducing duplicative data and streamlining metadata helps AI learn more effectively. Gulan Shakir from the National Archives and Records Administration discusses how modern cloud infrastructure accelerates data transfer compared to legacy systems. And Cloudera’s Kevin Talbert explains how proper data cataloging, synthetic datasets, and metadata management enhance testing and training for AI models.

Tune in on your favorite podcast today as these experts emphasize a key point: AI should enhance, not replace, human expertise in managing and interpreting data.

To view this webinar: The Changing Landscape of Identity Security.

Featured Speakers:

Scott Atchley, CTO for the National Computational Science & the Oak Ridge Leadership Computing Facility, Oak Ridge National Laboratory

Scott Atchley
CTO, NCS & OLCF, Oak Ridge National Laboratory
Thane Price, Data Platform & Design Lead, Idaho National Laboratory

Thane Price
Data Platform & Design Lead,
Idaho National Laboratory
Gulam Shakir, Acting Chief Technology Officer (CTO), National Archives & Records Administration (NARA)

Gulam Shakir
Acting CTO, National Archives & Records Administration
Kevin Talbert, Senior Solutions Engineer, Cloudera

Kevin Talbert
Senior Solutions Engineer,
Cloudera

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