AI Agents/RAG & Knowledge Base Agents
RAG Agents

RAG & Knowledge Base Agents

Agents that know your business — trained on your docs, your data, your institutional knowledge.

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Agents that know your business — trained on your docs, your data, your institutional knowledge.

We build Retrieval-Augmented Generation (RAG) systems that give AI agents access to your proprietary knowledge — accurate, sourced, and up-to-date.

Built for these teams and businesses

Enterprises with large document librariesProfessional services firmsHealthcare and legal organizationsAny company with trapped institutional knowledge

What we build for you

  • Internal knowledge base Q&A agents
  • Contract and policy retrieval agents
  • Technical documentation assistants
  • Sales enablement agents with product knowledge
  • Compliance and regulatory guidance systems

Problems we solve

  • — Employees spending hours searching for answers that exist somewhere
  • — Onboarding that takes months because knowledge isn't findable
  • — LLMs hallucinating without grounding in your actual data
  • — Knowledge walking out the door when employees leave

Platforms and tools we use

PineconeWeaviatepgvectorLangChainLlamaIndexOpenAI EmbeddingsAnthropic Claude

Deliverables

Document ingestion pipeline
Vector database setup
RAG agent build
Admin interface for content management

Typical timeline: 2–6 weeks

How an engagement works

01

Discovery call

We map your workflows, understand your tools, and identify the highest-ROI agent opportunity in your business.

02

Architecture design

We design the agent: inputs, outputs, integrations, error handling, and the logic that makes it reliable in production.

03

Build and integrate

We build the agent, connect it to your tools and data, and run it through real scenarios — not sanitized demos.

04

Test and harden

We stress-test edge cases, add monitoring, and make sure the agent degrades gracefully when something unexpected happens.

05

Deploy and hand off

We deploy to production, set up alerting, and train your team to manage and iterate on the agent going forward.

What to expect working with us

Common questions

How long does it take to build and deploy an AI agent?

Most simple agents (single workflow, clear inputs/outputs) are live in 1–2 weeks. More complex agents with multiple integrations or multi-agent architectures take 3–8 weeks. We'll give you an accurate timeline after our first call.

What happens if the agent breaks after you deliver it?

We include a 30-day stabilization period in every engagement. If something breaks, we fix it. We also set up monitoring and alerting so we catch issues before you do. Post-stabilization support retainers are also available.

Can you build agents that connect to my existing software?

Yes — that's the norm, not the exception. We integrate with CRMs, ERPs, ticketing systems, communication tools, databases, and custom APIs. If it has an API or webhook, we can connect an agent to it.

Which AI models and platforms do you use?

We're model-agnostic and platform-agnostic. We use OpenAI, Anthropic Claude, Google Gemini, and open-source models depending on the use case. For automation, we commonly use n8n, CrewAI, LangChain, and custom Python builds.

RAG & Knowledge Base Agents across the US

We deploy rag & knowledge base agents for businesses in 700+ cities. Find your city below.

Other agent services we offer

Ready to build your rag & knowledge base agents?

Book a free 30-minute call. We'll scope your project and give you a realistic timeline and budget.