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RAG & Knowledge AI Platforms

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RAG & Knowledge AI Platforms

Retrieval-Augmented Generation converts your PDFs, wikis, SharePoint, and databases into an AI system that answers from verified sources with citations.

How it works

  1. 01Ingest and preprocess documents and structured sources
  2. 02Embed and index in a vector store suited to your security needs
  3. 03Hybrid retrieval (semantic + keyword) with reranking
  4. 04LLM synthesis with citations and evaluation loops

Timeline

  1. Weeks 1–2: Corpus audit, ACL mapping, and eval set design
  2. Weeks 3–5: Ingestion, hybrid retrieval, and citation UX
  3. Weeks 6–7: Groundedness evaluation and access-control tests
  4. Week 8+: Pilot with a department and production hardening

Risks & mitigations

  • Stale or conflicting documents — mitigated with source ownership and freshness SLAs.
  • Hallucinated answers without retrieval — mitigated with refuse-when-empty policies.
  • Over-broad access — mitigated by mirroring document ACLs in retrieval.

Outcomes

  • Employees get instant answers from SOPs and policies
  • Reduced hallucination risk on company facts
  • Data residency options including India-based hosting

Frequently asked questions

What is RAG?+

Retrieval-Augmented Generation searches your knowledge base before answering, so the model responds from your documents instead of inventing facts.

Where is our data stored?+

We support data localization strategies, including India-based servers, aligned with your compliance requirements.

Which document sources can you ingest?+

PDFs, wikis, SharePoint, Confluence, shared drives, and selected databases — prioritized by freshness and authority.

How do citations work?+

Answers link back to retrieved chunks so users can open the source policy, SOP, or page that grounded the reply.

How do you evaluate groundedness?+

We run golden-question sets scoring retrieval hit rate, citation validity, and answer faithfulness before and after releases.

Can access control mirror our permissions?+

Yes. Retrieval can respect document ACLs so users only see answers from sources they are allowed to read.

How often is the index refreshed?+

Schedules range from near-real-time connectors to nightly batches depending on how often your corpus changes.

See this solution in your stack

We’ll map integrations, controls, and a pilot path for your team.