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UniversalAGI

Deploys autonomous AI agents for enterprises

CAD Automation Researcher

Full-TimePosted on 9/29/2026
No salary listed
Senior
PhD
San Francisco, CA, USA+1 moreMore locations: United States
RemoteFive days on-site per week in San Francisco.
H1B Sponsorship Available

About the job

Requirements
  • A PhD in Computer Science, Mechanical Engineering, Computational Geometry, or a related field, or equivalent hands-on industry research experience.
  • At least 2 years of experience building deep learning models for geometry processing, computer graphics, computational geometry, or 3D generative modeling.
  • Deep, hands-on understanding of CAD representations and geometry processing, including boundary representations (B-rep), CAD kernels such as OpenCASCADE or Parasolid, mesh generation, and defeaturing or healing techniques.
  • A proven research track record applying modern architectures such as graph neural networks, implicit neural representations, transformers, or diffusion models to 3D geometry or physical design problems.
  • Practical experience with optimization methods relevant to physical design, such as topology optimization, shape optimization, or differentiable and gradient-based design search.
  • Expert proficiency in Python and deep learning frameworks such as PyTorch or JAX, with the ability to build and train models from scratch rather than only fine-tune existing ones.
  • High execution velocity and comfort operating with significant ownership in a fast-moving startup environment.
Responsibilities
  • Develop methods to automatically repair, defeature, and simplify raw CAD geometry into simulation-ready form, removing a major manual bottleneck in the design pipeline.
  • Develop general-purpose optimization techniques, including topology optimization, shape optimization, and differentiable design search, that operate directly on learned geometry representations and AI physics model outputs.
  • Design and train models, such as implicit neural representations, graph neural networks, and diffusion models, for geometry generation and reconstruction from imperfect, incomplete, or multi-format CAD inputs (STEP, IGES, mesh, point cloud) or embeddings.
  • Own the workflow end to end, including synthetic geometry data generation, training, evaluation, and deployment into the company's production simulation pipeline.
  • Collaborate directly with the CEO, founding team, and physics research group to ensure geometry and optimization models integrate with the foundation model stack.
  • Help define the company's technical point of view on AI-driven geometry generation and design optimization, and publish results internally and, where appropriate, externally.
Desired Qualifications
  • Published research in top-tier venues such as NeurIPS, ICML, ICLR, SIGGRAPH, or CVPR.
  • Experience building on or extending commercial CAD kernels or CAD/CAM software internals.
  • Familiarity with reinforcement learning or large language model-based approaches to design or geometry automation.
  • Domain expertise in aerospace, automotive, or industrial manufacturing design workflows.
  • Open-source contributions to geometry processing, CAD, or 3D deep learning libraries.
  • Experience at a high-growth AI or engineering software startup.

About the company

UniversalAGI operates as a forward-deployed AI lab that builds and deploys autonomous AI agents for enterprises and government organizations. Its platform provides the infrastructure, talent, and security needed to turn business concepts into production-ready AI applications that work with an organization’s most sensitive data. The system includes a suite of agents and automation tools and can often convert a concept into a working app in under an hour using natural language inputs, with emphasis on security, scale, and adaptability. The company differentiates itself by embedding expert AI teams with clients to deliver mission-critical, production-grade AI—often in secure or air-gapped environments for sensitive national data—and by combining no-code capabilities with enterprise-grade AI transformations. UniversalAGI aims to enable rapid, secure AI adoption across both private and public sectors, delivering autonomous, reliable AI solutions for complex, data-sensitive challenges.

Company Size

11-50

Company Stage

N/A

Total Funding

N/A

Headquarters

San Francisco, California

Founded

N/A

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Simplify Jobs

Simplify's Take

What believers are saying

  • Precisely podcast coverage in February 2026 validates enterprise interest in agentic data integrity.
  • 2026 hiring for technical product and ML infrastructure roles signals active product commercialization.
  • Research posts in August 2026 show rapid model iteration and stronger technical storytelling.

What critics are saying

  • ZipRecruiter postings show multiple open roles, signaling a tiny, execution-heavy team.
  • If LIFT misses accuracy claims, engineering customers abandon it for established CFD vendors.
  • Dependence on founder-led enterprise sales makes UniversalAGI fragile before repeatable revenue.

What makes UniversalAGI unique

  • UniversalAGI positions itself as “OpenAI for Physics” for industrial simulation.
  • 2026 jobs cite LIFT architecture, replacing CFD solvers with seconds-fast physics outputs.
  • Its air-gapped, sensitive-data deployment focus targets defense, aerospace, and government buyers.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

401(k) Retirement Plan

Paid Vacation

Commuter Benefits

Meal Benefits

Team Building & Fun Activities

Wellness Program

Company Equity

Growth & Insights and Company News

Headcount

6 month growth

↓ -9%

1 year growth

↓ -9%

2 year growth

↓ -9%
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