Build, govern, and ship AI agents that run on your own models, answer from your own knowledge, and live inside your workspace's security model — with versioning, per-execution cost audit, and enforced RBAC built in.
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From the first bot app to governed, audited agents on your own channels
Build agents with system prompts and model bindings, then publish versions with changelogs — and roll back when a prompt change regresses behavior.
Register 11 LLM provider types — OpenAI, Anthropic, Google, Groq, Azure OpenAI, AWS Bedrock, and more — with vaulted keys and connection tests.
Ingest documents, chunk and embed them into per-KB vector collections, and validate retrieval quality with semantic search before launch.
Connect Slack, Teams, Discord, WhatsApp, and webhooks. Inbound messages acknowledge instantly while agents respond in the background.
Enforced RBAC on every API operation, policy definitions across seven types, audit trails, and machine credentials for pipelines.
The embedded FluidGrids visual builder composes agents into larger automations alongside templates, the package store, and prompt templates.
Why Botlit
Agentic AI projects stall on the same five bottlenecks. Botlit removes them.
Botlit versions every agent and app. Iterate in draft, publish with a changelog, and roll back the moment a prompt tweak regresses behaviour.
Read the storyBring your own keys across 11 provider types — OpenAI, Anthropic, Google, Groq, Azure OpenAI, AWS Bedrock, and more — with connection tests and per-model bindings.
Read the storyEvery execution records status, input/output, tokens, and cost. Per-agent statistics turn "what did the bot spend?" into a query instead of a finance project.
Read the storyEvery API operation is RBAC-governed, workspaces isolate tenants, and machine credentials give pipelines governed access.
Read the storyManaged knowledge bases with your choice of chunking strategy, per-KB vector collections, and semantic search validation before anything goes live.
Read the storyBuild, ground, deploy, govern. Each step is real in the platform today.
A bot app is the user-facing front door; agents are the specialists behind it. Give each agent a system prompt and a model binding, link apps to agents with a routing strategy, then publish a version with a changelog.
Five teams, one governed control plane
Build and operate branded AI assistants for many clients from one platform, each walled off in its own workspace.
Governed, auditable agent deployment at scale — RBAC, policies, a multi-provider model strategy, and private knowledge.
Member-facing assistants with strict data-retention and content policies. HIPAA posture is on the compliance roadmap.
Deflect support volume and automate internal helpdesk and HR Q&A — without standing up an ML team.
Ship an in-product AI assistant fast, with API-first access through the public API.
Bring the model providers you already trust and meet people where they already are.
The unglamorous things that make agents deployable: permissions, audits, versions, and vaulted credentials — built in, not bolted on.
Every API operation carries an RBAC rule, composed into the platform API and enforced on every request.
Every run is recorded with status, input/output, token counts, and cost — plus per-agent and per-app stats.
Agents and apps are versioned with publish and changelogs, so a regressing prompt change is one rollback away.
LLM keys resolve through the platform integrations service and are vaulted — never stored in an agent definition.
Every agent, knowledge base, and conversation is workspace-scoped; the tenant is inferred automatically.
A registry of known agents with explicit trust levels — unverified, verified-publisher, or internal.
Our team helps you adopt and get more from Botlit — and delivers done-for-you outcomes powered by the platform.
We design your bot apps and the specialist agents behind them — versioned, routed, and ready to roll back.
We turn your documents into a managed retrieval corpus and prove its quality before launch.
We connect your agents to web, Slack, Teams, WhatsApp, voice, and webhooks — end to end.
We run your agent workforce — monitoring, tuning, and versioning — so you get outcomes without the ops load.
From a first bot app to a governed fleet across the org.
Try the platform
Run a real workload
Govern at scale
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