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OpenPipe

AI/ML fine-tuning platform for LLMs

AI InfrastructureLLM fine-tuningMachine LearningAI Agentsdeveloper tools
Function:IT
Subfunction:Device & Asset Management
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Founded
2023
Employees
1-10
Funding
$6.7M seed (Mar 2024)
Stage
Seed stage; acquired by CoreWeave Sept 2025
Report version: Sep 24, 2025

1. Products/Services & Features

  • Main Offerings:

    • LLM fine-tuning platform with automated data capture
    • Reinforcement learning training for AI agents
    • Custom model deployment and hosting
  • Feature Breakdown: Data capture, model training, evaluation tools, deployment endpoints, AWS Bedrock integration (Departments: Engineering, AI/ML teams, Product development)

  • Business Industry Gearing: AI-first startups, enterprise AI teams, developer-focused organizations

2. Security & Compliance

  • Certifications: No public SOC2 attestation found, No major security certifications publicly disclosed

  • Vendors/Tools: Cloud hosting providers not publicly disclosed

  • Risk Profile:

3. User Feedback & Adoption

  • Aggregated Reviews: No G2/Capterra ratings available

    • Pros: No public user reviews found
    • Cons: No public user reviews found
  • Adoption Insights:

    • Adoption Ease: Technical users; designed for ML engineers with API experience
    • Adoption Cultural Fit: Strong fit for AI-native organizations and technical teams
  • Metrics: No public metrics available

  • Barriers: Requires technical expertise; limited to AI/ML use cases

4. Monetization & Business Model

  • Revenue Model: Usage-based SaaS with per-token pricing and enterprise plans

  • Pricing: Per-token pricing (e.g., Llama 3.1 8B: $0.30/$0.45 per 1M tokens), hourly compute units, enterprise custom pricing (Sources: https://docs.openpipe.ai/pricing/pricing)

  • Market Context:

    • TAM: $15-25B generative AI infrastructure market
    • Growth Stage: Early scaling, post-product-market-fit

5. Leadership & Recent Developments

Name Description LinkedIn X Account
Kyle Corbitt Co-founder and CEO; former Y Combinator director and Google engineer https://www.linkedin.com/in/kcorbitt
David Corbitt Co-founder and CPO; leads product management and development https://www.linkedin.com/in/davidcorbitt
  • Key Metrics Update:

    • Funding: Acquired by CoreWeave September 2025
    • Employee Growth: No public growth metrics available
  • News/Trends:

    • News Launch: Launched Agent Reinforcement Trainer (ART) open-source toolkit
    • News Partnerships: AWS Bedrock integration for model deployment
    • News Funding: CoreWeave acquisition announced September 3, 2025
    • News Challenges: Transitioning to CoreWeave integration post-acquisition

6. Target Audience & Use Cases

  • Target Market: High-growth, venture-backed software companies and technical startups building LLM applications

  • Target Users & Personas: ML/AI engineers, product managers, tech leads, CTOs

  • User Experience Level: Technical users with ML/AI and API experience

  • Key Use Cases:

    • Fine-tuning custom GPT models for proprietary company data and workflows
    • Building scalable chatbots and virtual assistants with RAG capabilities
    • Automating support, search, and document processing with custom models

7. Impact & Recommendations

  • Measurable Outcomes:

    • Workflow Improvements: Reduced LLM costs, improved model accuracy, faster deployment cycles
    • ROI Examples: Claimed $3M total saved in inference costs for customers
  • Fit Assessment: Strong fit for AI-native startups and enterprises needing custom LLM solutions

  • Custom Rec Flags:

    • Priority ICP: VC-backed AI startups, enterprise AI teams, developer-focused organizations
    • Short Term Goals: Integration with CoreWeave platform and expanded enterprise capabilities

8. Data Sourcing Notes

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