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Find the right AI tool in 2 minutes. Independent reviews and honest comparisons of 770+ AI tools.

  1. Home
  2. Tools
  3. AI Agent Platform
  4. Dust
  5. Pricing
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โ† Back to Dust Overview

Dust Pricing & Plans 2026

Complete pricing guide for Dust. Compare all plans, analyze costs, and find the perfect tier for your needs.

Try Dust Free โ†’Compare Plans โ†“

Not sure if free is enough? See our Free vs Paid comparison โ†’
Still deciding? Read our full verdict on whether Dust is worth it โ†’

๐Ÿ†“Free Tier Available
๐Ÿ’Ž3 Paid Plans
โšกNo Setup Fees

Choose Your Plan

Free

$0

mo

  • โœ“Limited AI agent access
  • โœ“Basic data source connections
  • โœ“Community support
Start Free Trial โ†’
Most Popular

Pro

$29/user/month

mo

  • โœ“Full AI agent creation and customization
  • โœ“Multiple data source connectors
  • โœ“Multi-model support
  • โœ“Free trial included
Start Free Trial โ†’

Enterprise

Custom pricing

mo

  • โœ“Advanced security and governance controls
  • โœ“SSO and dedicated support
  • โœ“Custom integrations
  • โœ“Audit logging
  • โœ“Free trial included
Contact Sales โ†’

Pricing sourced from Dust ยท Last verified March 2026

Feature Comparison

FeaturesFreeProEnterprise
Limited AI agent accessโœ“โœ“โœ“
Basic data source connectionsโœ“โœ“โœ“
Community supportโœ“โœ“โœ“
Full AI agent creation and customizationโ€”โœ“โœ“
Multiple data source connectorsโ€”โœ“โœ“
Multi-model supportโ€”โœ“โœ“
Free trial includedโ€”โœ“โœ“
Advanced security and governance controlsโ€”โ€”โœ“
SSO and dedicated supportโ€”โ€”โœ“
Custom integrationsโ€”โ€”โœ“
Audit loggingโ€”โ€”โœ“

Is Dust Worth It?

โœ… Why Choose Dust

  • โ€ข Connects to many internal data sources including Slack, Notion, Google Drive, GitHub, and Confluence with automated ingestion and indexing
  • โ€ข Visual workflow builder makes LLM pipeline design accessible to non-developers while still offering depth for technical users
  • โ€ข Flexible multi-model routing lets teams choose the best LLM per task, avoiding vendor lock-in to a single provider
  • โ€ข Strong data governance controls with granular permissions, audit logging, and configurable data access per agent
  • โ€ข Managed RAG pipeline handles chunking, embedding, and retrieval automatically, eliminating the need to build and maintain vector search infrastructure
  • โ€ข Open-source heritage provides transparency into how data is processed and enables community-driven improvements

โš ๏ธ Consider This

  • โ€ข Requires initial setup and data integration effort for each connected source, which can delay time-to-value for organizations with many tools
  • โ€ข Per-seat pricing at $29/user/month can become prohibitively expensive for large teams looking at broad organizational rollout
  • โ€ข Advanced workflow design has a meaningful learning curve despite the visual builder, particularly for multi-step pipelines with branching logic
  • โ€ข Smaller ecosystem and community compared to developer-focused alternatives like LangChain or Flowise, meaning fewer third-party tutorials and plugins
  • โ€ข Data synchronization latency from connected sources may result in agents referencing slightly outdated information depending on sync frequency

What Users Say About Dust

๐Ÿ‘ What Users Love

  • โœ“Connects to many internal data sources including Slack, Notion, Google Drive, GitHub, and Confluence with automated ingestion and indexing
  • โœ“Visual workflow builder makes LLM pipeline design accessible to non-developers while still offering depth for technical users
  • โœ“Flexible multi-model routing lets teams choose the best LLM per task, avoiding vendor lock-in to a single provider
  • โœ“Strong data governance controls with granular permissions, audit logging, and configurable data access per agent
  • โœ“Managed RAG pipeline handles chunking, embedding, and retrieval automatically, eliminating the need to build and maintain vector search infrastructure
  • โœ“Open-source heritage provides transparency into how data is processed and enables community-driven improvements

๐Ÿ‘Ž Common Concerns

  • โš Requires initial setup and data integration effort for each connected source, which can delay time-to-value for organizations with many tools
  • โš Per-seat pricing at $29/user/month can become prohibitively expensive for large teams looking at broad organizational rollout
  • โš Advanced workflow design has a meaningful learning curve despite the visual builder, particularly for multi-step pipelines with branching logic
  • โš Smaller ecosystem and community compared to developer-focused alternatives like LangChain or Flowise, meaning fewer third-party tutorials and plugins
  • โš Data synchronization latency from connected sources may result in agents referencing slightly outdated information depending on sync frequency

Pricing FAQ

What data sources can Dust connect to?

Dust offers native connectors for popular workplace tools including Slack, Notion, Google Drive, GitHub, Confluence, and Microsoft Teams. It also supports custom API integrations and direct document uploads. Once connected, Dust automatically ingests and indexes the content so AI agents can retrieve relevant information during conversations. Data syncs are managed by the platform, though sync frequency may vary by source and plan tier.

How does Dust handle data privacy and security?

Dust provides granular permission controls that let administrators define which data sources each AI agent can access, ensuring sensitive information is only available to authorized users. The platform includes audit logging to track agent interactions and data access. Dust does not use customer data to train foundation models, and its open-source codebase allows organizations to inspect how data flows through the system. Enterprise plans offer additional security features such as SSO and dedicated infrastructure options.

Can non-technical users build AI agents with Dust?

Yes, Dust's visual app builder is designed to make AI agent creation accessible to non-developers. Users can configure agent instructions, select which data sources to connect, and define tool access through a graphical interface without writing code. However, more complex multi-step workflows and advanced configurations may require some technical understanding of how LLM pipelines work. Most teams find that a mix of technical and non-technical users collaborating on agent design produces the best results.

Which AI models does Dust support?

Dust supports multiple foundation models including OpenAI's GPT-4 and GPT-3.5, Anthropic's Claude family, and Mistral models. The platform offers intelligent model routing, allowing teams to select the most appropriate model for each specific task or agent based on factors like accuracy, speed, and cost. This multi-model approach means organizations are not locked into a single AI provider and can take advantage of new models as they become available.

How is Dust different from using ChatGPT or Claude directly?

While general-purpose AI chatbots like ChatGPT or Claude operate on their training data alone, Dust agents are grounded in your organization's actual internal data through managed RAG. This means Dust agents can answer questions about your specific company processes, projects, and documentation rather than providing generic responses. Additionally, Dust supports creating multiple specialized agents for different teams and functions, each with tailored instructions and data access, rather than offering a one-size-fits-all chat experience. The platform also provides enterprise governance features like access controls and audit trails that consumer AI tools typically lack.

Ready to Get Started?

AI builders and operators use Dust to streamline their workflow.

Try Dust Now โ†’

More about Dust

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