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Using Cake for TrustCall

TrustCall is a LangChain-compatible agent framework designed for reliable, structured data extraction from untrusted sources.
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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

Dan Doe
President, Altis Labs

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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

Jane Doe
CEO, AMD

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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

Michael Doe
Vice President, Test Company

How it works

Extract structured data securely with TrustCall on Cake

Cake supports TrustCall-based agents for extracting reliable, structured data from untrusted sources with execution tracing, fallback logic, and validation built in.

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Agent framework for data extraction

Use TrustCall to create LangChain-compatible agents for structured output.

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Built-in validation and fallback

Improve reliability with schema enforcement and multi-step fallbacks.

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Secure and governed by default

Run TrustCall agents in secure, reproducible environments with audit logging.

Frequently asked questions about Cake and TrustCall

What is TrustCall?
TrustCall is a LangChain-compatible agent framework designed for structured data extraction from untrusted sources.
How does Cake support TrustCall agents?
Cake runs TrustCall agents in secure, policy-governed environments with versioning and observability.
What makes TrustCall different from standard LLM agents?
TrustCall includes strong schema enforcement, fallback logic, and call tracing to reduce hallucinations.
Can TrustCall be integrated into larger AI pipelines?
Absolutely—TrustCall agents can be used in workflows alongside retrievers, APIs, and downstream tools.
Is TrustCall production ready?
Yes—when run on Cake, TrustCall can power scalable, auditable, and secure AI pipelines.
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