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​In this hands-on workshop, we'll show you how to stop flying blind on your AI agents. Using dltHub Pro we'll build a pipeline that ingests agent traces (e.g. tool calls, intermediate steps, token usage, and outcomes) and transforms them into structured, queryable data.

​From there, we'll turn that data into reports that actually tell you what your agents are doing, where they're failing, and how to make them better.

You'll learn how to:

  • ​Capture and normalize agent traces into a consistent schema
  • ​Transform and model nested, variable-length trace data with dltHub Pro
  • ​Deploy your pipeline and build reports that surface real insights about agent performance


By the end, you'll have a working reporting layer for your AI agents, so you can debug faster, optimize smarter, and ship with confidence.

About the speaker:
Alena is a DevRel at dltHub. She builds and optimizes data pipelines, engages with dltHub community, and creates educational content to make data processing more accessible.

This event is sponsored by dltHub

**Join our Slack: https://datatalks.club/slack.html**

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