Building Open Superintelligence Infrastructure

Prime Inc.
San Francisco, CA, United States
3 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Compensation
$150,000.0 - $300,000.0
Working hours
Regular working hours
Job source

Tech stack

Web Interfaces Artificial Intelligence Software Debugging Linux Programming Tools Distributed Systems General-Purpose Computing on Graphics Processing Units Hypervisor Python (Programming Language) Linux Kernel Machine Learning Open Source Technology
+23 more
Performance Tuning Ansible Prometheus Next.js System Programming TypeScript Virtualization Technology WebSocket Reinforcement Learning Cloud Platform System Real Time Systems Tailwind ReactJS Grafana Backend Fastapi Kubernetes Infrastructure Automation Frameworks HuggingFace Machine Learning Operations Front End Software Development Restful APIs Terraform

Job description

Prime Intellect is building the open superintelligence stack - from frontier agentic models to the infra that enables anyone to create, train, and deploy them. We aggregate and orchestrate global compute into a single control plane and pair it with the full rl post-training stack: environments, secure sandboxes, verifiable evals, and our async RL trainer. We enable researchers, startups and enterprises to run end-to-end reinforcement learning at frontier scale, adapting models to real tools, workflows, and deployment contexts.

We recently raised $15mm in funding (total of $20mm raised) led by Founders Fund, with participation from Menlo Ventures and prominent angels including Andrej Karpathy (Eureka AI, Tesla, OpenAI), Tri Dao (Chief Scientific Officer of Together AI), Dylan Patel (SemiAnalysis), Clem Delangue (Huggingface), Emad Mostaque (Stability AI) and many others.

Role Impact

This is a hybrid role spanning both our infrastructure layers and developer platform. You’ll work on two key areas:

  1. The underlying sandbox infrastructure that powers our training systems
  2. Our developer-facing platform for AI workload management

You will work on a distributed system with performance engineering at its core. The role will draw on the full breadth of your systems skills, from deep Linux kernel topics to high-level distributed system design. Expect your low-level systems fortitude to be pushed as you build infrastructure that remains fast, robust, and reliable at scale.

Core Technical Responsibilities

Infrastructure Development

  • Design and implement distributed orchestration infrastructure in Go and Rust
  • Build high-performance networking and coordination components
  • Create infrastructure automation pipelines with Ansible
  • Manage cloud resources and container orchestration
  • Implement scheduling systems for heterogeneous hardware (CPU, GPU, TPU)

Platform Development

  • Build intuitive web interfaces for AI workload management and monitoring
  • Develop REST APIs and backend services in Python
  • Create real-time monitoring and debugging tools
  • Implement user-facing features for resource management and job control

Requirements

  • Systems programming experience with Rust
  • Strong Linux systems knowledge, including networking, namespacing, and performance tuning
  • Virtualization experience, including VMs, hypervisors, and low-level resource management
  • Infrastructure automation (Ansible, Terraform)
  • Container orchestration (Kubernetes)
  • Cloud platform expertise (GCP preferred)
  • Observability tools (Prometheus, Grafana)

Platform Skills

  • Strong Python backend development (FastAPI, async)
  • Modern frontend development (TypeScript, React/Next.js, Tailwind)
  • Experience building developer tools and dashboards
  • RESTful API design and implementation

Nice to Have

  • Experience with GPU computing and ML infrastructure
  • Knowledge of AI/ML model architecture and training
  • High-performance networking implementation
  • Open-source infrastructure contributions
  • WebSocket/real-time systems experience, We value potential over perfection - if you’re passionate about democratizing AI development and have experience in either platform or infrastructure development (ideally both), we want to talk to you.

Benefits & conditions

  • Cash Compensation Range of $150-300k with significant equity incentives
  • Flexible work arrangement (San Francisco office preferred, remote possible for exceptional candidates)
  • Full visa sponsorship and relocation support
  • Professional development budget for courses and conferences
  • Regular team off-sites and conference attendance
  • Opportunity to shape the future of decentralized AI development

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