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Desarrollo de RAG y IA agéntica

Sistemas de generación aumentada por recuperación, flujos agénticos y aplicaciones LLM privadas para trabajo de conocimiento.

RAG systems that actually answer correctly

We build retrieval-augmented generation systems that don't hallucinate — grounded answers with citations, evaluation harnesses, and retrieval pipelines tuned for your specific corpus.

What we build

Internal knowledge assistants ("what does our documentation say about X"), customer support copilots that draft responses from your policies, document Q&A over contracts/specs/pdfs, and agentic workflows that take multi-step actions across your tools.

The hard parts

Good RAG isn't just "embed and search." It's chunking strategy, hybrid retrieval (keyword + vector), re-ranking, prompt engineering, evaluation datasets, and observability. We've shipped this in production and we know where it quietly fails.

Agentic when it fits

Agents are powerful when a task genuinely needs multi-step reasoning with tool use. We build agentic systems with clear guardrails — every action is logged, every tool call is sandboxed, and a human is in the loop for high-stakes decisions.

Preguntas frecuentes

What vector database do you use?

We default to pgvector when you already have Postgres (one less system to operate), and recommend Pinecone / Qdrant / Weaviate for higher-scale standalone deployments. We help you choose based on your existing infra and scale projections.

How do you prevent hallucination?

Three layers: retrieval-grounded prompts that force the model to cite sources, an evaluation harness that flags answers lacking grounding, and a confidence threshold below which the system declines to answer instead of guessing.

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Trabajo relacionado

Agentic RAG Vision Bot project
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IA y sistemas de conocimiento

Agentic RAG Vision Bot

Asistente RAG agéntico que combina la recuperación de documentos con la visión por computadora: responde preguntas, razona sobre bases de conocimiento y procesa imágenes en un único sistema de IA privado.

Caso de estudioEntrega privada