Every answer traces back to its context, source page, version, and pipeline. One of the sexiest use cases and best uses of AI, deliver the next step in the procedure the medic is trained on to reduce cognitive load and provide an audit trail for the medic back at the FOB.
Fewer tokens, because you control what the model sees.
Bast controls exactly what reaches the model, so it's deterministic and you own every input — then delivers each answer the way people need it: 8th-grade English, Vietnamese, or an analogy.
Don't ask the model to be honest. Limit what it can say.
Bast sits between your knowledge and the model's output. Before any answer ships, it checks scope, pulls only approved sources, and refuses when nothing supports a reply.
Proof before output
The answer is only the visible part.
Supported question
Answers come from approved knowledge.
The model sees only what passed the checks. Answers are written for the person asking, grounded in your own sources.
Unsupported question
A clean no is better than a confident guess.
If nothing supports an answer, Bast refuses before the model guesses.
Institutional trace
The route is inspectable.
See the sources, scores, and path behind every answer. Users get clarity; you get accountability.
What you deploy
Four layers, one governed system of record for AI.
Modular infrastructure. Run the whole stack or just the layers you need — hosted, private cloud, or on premises.
AI infrastructure
Microservices you host or run on premises.
Kubernetes microservices that fit your operating and compliance needs.
Data management
Fully versioned, ontology-aware storage.
Versioned storage and ontology-aware language understanding, built in.
Orchestration
Analysis, chat, search, continuous learning.
Route each request to the right behavior and keep improving from approved knowledge.
Application
Flexible end-user experiences.
Interfaces that put governed answers in front of the people who need them.
How it's built
Multiple AI technologies, one deployable solution.
Data pipeline
Raw data becomes structured knowledge.
Turn raw source material into a knowledge base the system can reason over.
Natural-language understanding
Grounded meaning, controlled vocabulary.
Language is read against your own terms, not a generic guess.
Knowledge graphs
Traceable, context-aware relationships.
Answers follow explicit relationships, so the route stays inspectable.
Model Context Protocol
Standardized context, cleanly injected.
Built on MCP, so the right context reaches the model and nothing else does.
Hybrid intelligence
Neural and symbolic reasoning together.
Model fluency plus symbolic control, for answers that hold up.
Explainable UI layer
Human-readable outputs, every time.
Responses people can read, check, and act on with confidence.
Watch the control layer work
Seeing the refusal is as important as seeing the answer.
See Bast from the admin console, knowledge manager, and end-user view: approved knowledge sets the boundary, and unsupported questions stop before a guess can ship.
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Lucid Therapeutics
Bast AI | Lucid Therapeutics Demo
From admin setup to end-user experience: governed knowledge, CAT building, and production analytics.