Conduktor invites you to their event

Building Trust in Real-Time Data for AI and Distributed Systems

About this event

Garbage In, Disaster Out: Why Agentic AI Raises the Stakes on Data Quality

Generative AI creates. Agentic AI acts.

And that means the cost of bad data just exploded.

You’ve heard “garbage in, garbage out.” With agentic AI, it’s worse: garbage in, disaster out. Acting on stale or broken data leads to real-world consequences—automated decisions that breach policies, trigger compliance nightmares, or harm customer trust.

In this webinar, see how Conduktor Trust enforces data quality in-stream—before bad data spreads. No retroactive cleanup. No downstream surprises. Just clean, compliant, AI-ready data the moment it hits your pipeline.

What You’ll Learn:

  • Define precise rules to flag, fix, or block bad data as it’s created.
  • Catch silent data quality issues before they become big problems or corrupt AI outcomes.
  • Guarantee trusted data flows into AI systems, event-driven architectures and real-time analytics.

Plus: Live Demo + Interactive Q&A

Why You Can’t Miss This

AI will act on your data. Whether it’s ready or not. If your data isn’t trusted at the source, your AI outcomes will never be.

Join us—and learn how to make your operational data AI-grade by default, not by chance.

Meet the Experts

James White - Director of Product, Conduktor

Johnathan Law - Senior Product Manager, Conduktor

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Conduktor

The Governed Data Hub on Streaming

Unify how data moves, using a shared governance
framework across teams, systems, and agents.