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PipesHub

Unify fragmented corporate knowledge across chat channels, documents, and cloud drives with PipesHub, an open-source workplace context platform providing permission-aware search and verifiable answers for teams and autonomous agents. Employees can query enterprise knowledge bases through a conversational interface that retrieves relevant information across Google Workspace, Microsoft 365, Slack, Confluence, Jira, and GitHub while strictly respecting individual user access permissions. Knowledge workers can verify every answer through clickable citation blocks that trace claims directly back to source documents, spreadsheet rows, or chat messages. Teams can assemble custom AI agents visually using a drag-and-drop builder, combining retrieval collections with interactive toolsets to automate multi-step operations like drafting customer responses or creating issue tickets. Autonomous agents connect via Model Context Protocol to inspect shared company knowledge and perform external actions across connected SaaS tools. Organizations can index scanned PDFs, slide decks, markdown pages, and spreadsheets with OCR and document parsing, maintaining synchronized records through automated schedules. Administrators can inspect synchronized records, monitor query history, and manage connector credentials across all integrated business applications. Running on a dedicated VPS on RepoCloud with guaranteed CPU, RAM, and SSD, full root SSH access, and a browser serial console. Apache License 2.0 licensed.

PipesHub
PipesHub
PipesHub
PipesHub
PipesHub

Benefits

  • Permission-Aware Enterprise Context Retrieval
  • PipesHub resolves user access permissions against original source systems at query runtime, ensuring AI search results and generated summaries display only documents that each user is authorized to read.
  • Verifiable Block-Level Document Citations
  • Every generated response includes direct citations mapped to specific document blocks, spreadsheet cells, and messages, allowing teams to audit factual claims and prevent hallucinated recommendations.
  • Autonomous Agent Toolset Orchestration
  • Visual agent builder combines read-oriented knowledge connectors with bidirectional toolset APIs, empowering agents to retrieve relevant enterprise context and trigger live operational tasks in external systems.
  • Private Self-Hosted Infrastructure Control
  • Deploy the complete pipeline on your own server using Docker Compose, pairing local or remote LLMs with vector stores while keeping proprietary enterprise data under your infrastructure perimeter.

Features

  • Universal Enterprise Connectors
  • Indexes data from Slack, Google Drive, Microsoft 365, Notion, Jira, and GitHub through automated scheduled sync and webhook-driven ingestion pipelines.
  • Graph-Augmented Vector Search
  • Combines Neo4j knowledge graph topology with Qdrant vector similarity indexing to preserve document hierarchy, cross-tool relationships, and organizational context.
  • Model Context Protocol Integration
  • Exposes standardized MCP client and server interfaces, enabling external AI desktop apps and autonomous agents to query enterprise knowledge securely.
  • Multimodal Document Parsing
  • Processes PDFs, Office documents, spreadsheets, and scanned records using Docling and OCR engines to extract tabular data, text blocks, and embedded diagrams.
  • No-Code Agent Canvas
  • Interactive visual workflow builder links LLM reasoning nodes with custom prompt templates, knowledge collections, and external API toolsets for automated task execution.

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