--- title: 'Backend Infrastructure Engineer at Vinci4d' canonical: 'https://feeny.ai/job/backend-infrastructure-engineer-vinci4d-palo-alto-yscv7nkzfmmw' type: 'job' last_seen: '2026-09-08' --- # Backend Infrastructure Engineer at Vinci4d - **Company:** Vinci4d - **Location:** Palo Alto, CA - **Employment:** full-time - **Work type:** hybrid - **Posted:** 2026-09-03 - **Last confirmed live:** 2026-09-08 - **Apply:** https://jobs.ashbyhq.com/vinci4d/15d98bae-5a41-48ac-97d6-2dbf5c637b0f ## Job description ## ABOUT US At Vinci, we are building the operator intelligence infrastructure that modern hardware programs rely on daily. We have already proven that a single foundation model works out of the box across physics on realistic production workloads. - Trained on petabytes of structured physics data - Running billion-voxel inference in production - Tier-1 semiconductor and hardware customers - Operating across multiple physical scales and operator regimes We are scaling deployment at industrial magnitude: - Increase simulation throughput by two orders of magnitude - Expand simulation capabilities to maximize utility and domain coverage - Support global, multi-entity deployment across Tier-1 ecosystems Our ambition is to become the default operator intelligence layer that hardware companies run on. To get there, we need the backend and infrastructure that lets our research move to production reliably, repeatably, and at scale. ## BUILDING THE BACKBONE Our unified model architecture delivers steady-state and transient solutions to partial differential equations at production scale. None of that reaches a customer without robust infrastructure underneath it: reproducible builds, automated pipelines, well-provisioned cloud, and code that holds up under load. This role owns that backbone. You will make our systems fast, dependable, and easy for physicists, researchers, and engineers to build on. ## WHAT YOU WILL DO Your north star will be production and delivering value to our customers. - Design, build, and operate the backend services and infrastructure that power Vinci’s simulation and inference platform. - Own infrastructure-as-code with Terraform across our cloud environments, provisioning and managing services reliably and repeatably. - Build and harden CI/CD pipelines (Jenkins or equivalent) so the team can ship with confidence and strong regression coverage. - Maintain and evolve our build systems (CMake, pip/uv) across large Python and C++ codebases. - Take early prototypes through iteration and hardening all the way to customer use, in modest iterative steps. - “Close the gap” on pre-existing infrastructure where needed, and evolve core platform components as the product grows. - Partner closely with Physicists, AI researchers, Software Engineers, and Computational Geometry experts to turn research into dependable systems. ## WHAT WE’RE LOOKING FOR ## QUALIFICATIONS - 8+ years of professional software engineering experience, with a strong focus on backend and infrastructure. - Infrastructure & cloud: hands-on Terraform experience and production work on at least one major cloud (GCP, AWS, Azure, or similar). - CI/CD: built and maintained pipelines with Jenkins or an equivalent CI system. - Build systems: comfortable with build tooling such as CMake and Python packaging via pip/uv. - Languages: proficient in Python, with working familiarity in C++. - Scale: comfortable navigating and contributing to large, multi-language codebases. - Have contributed to a production data processing or platform system. WE’RE VERY EXCITED TO TALK WITH YOU IF YOU HAVE - Experience taking an early-stage prototype to a production environment, at a startup or national lab. - Exposure to frontend development. - Familiarity with 3D rendering or visualization technologies. - Experience supporting ML or scientific-computing workloads (PyTorch, NumPy, CUDA, GPU infrastructure). - Experience with containers and orchestration (Docker, Kubernetes) and observability tooling. ## ENGINEERING EXPECTATIONS - Strong software engineering fundamentals; comfortable meeting software design standards to get code into a production environment. - Capable of leveraging pre-existing infrastructure and “closing the gap” on occasion. - Strong CI, regression testing, and validation discipline. - Comfort evolving core platform and model infrastructure. ## WHY VINCI Join a rare early-stage startup that has successfully moved a foundational product from research to real-world, production environments, already serving Tier-1 semiconductor and hardware customers. ## OUR MISSION & IMPACT Vinci is building the operator intelligence infrastructure that modern hardware programs rely on daily. We are scaling our solution to accelerate design validation from hours to seconds. You will build the infrastructure that lets our unified model architecture—currently running billion-voxel inference—scale and expand into the transient domain, a key frontier in modeling interactions, deformation, and dynamics. ## GROWTH & OPPORTUNITY This is a unique opportunity for technical and professional growth. You will help define a foundational abstraction layer early in the company’s trajectory. The team is small, friendly, and accessible, and you will be empowered to own and architect large pieces of the system alongside Physicists, AI researchers, Software Engineers, and Computational Geometry experts, including greenfield opportunities to expand Vinci’s core capabilities. ## LEADERSHIP You will work with spectacular technical leaders like CTO Sarah Osentoski and CEO Hardik Kabaria, whose vision is to greatly accelerate physics simulations with ML while retaining solver-grade accuracy. ## About Vinci4d ## Company Overview - **One-liner**: Vinci4D builds a physics AI foundation model that enables deterministic, solver-accurate simulation at manufacturing resolution—eliminating meshing, approximations, and customer-specific training. - **Entity Type**: Private (Series A, 2025) - **Headquarters**: Palo Alto, California, United States - **Founded**: 2023 - **Founders**: Dr. Hardik Kabaria (CEO) and Dr. Sarah Osentoski (CTO) ## Core Business - **Primary industry**: Semiconductor design and simulation; AI-powered physics simulation for hardware engineering. - **Target customers**: Enterprise (semiconductor and systems companies), B2B. - **Mission or purpose statement**: Build a physics AI foundation model that natively understands the laws of physics, enabling engineers to innovate at speed and scale once unimaginable. ## Products & Services - **Vinci Platform**: A physics AI foundation model that performs full-manufacturing-resolution simulations (thermal, thermo-mechanical, warpage) out-of-the-box – no meshing, no approximations, no customer data required. Validated against traditional FEA solvers with <2% deviation and up to 1000× speed improvement. Deployed securely behind customer firewalls. ## Market Standing - **Valuation/Market Cap**: Not disclosed (private company) - **Key Metric**: Total funding – **$36.5M** (LinkedIn) or **$46M** (conflicting reports per newsroom; includes $36M Series A + $500k seed + possible additional tranche). [getvinci.ai](https://www.getvinci.ai/newsroom/) [linkedin.com](https://www.linkedin.com/company/vinci4d-ai) - **Notable Investors/Partners**: Khosla Ventures, Eclipse Ventures, Xora. Strategic partnerships with leading semiconductor companies (over half of top 20 semiconductor firms have benchmarked Vinci). - **Growth Signals**: Employee headcount grew **550% YoY** to 27 people; peer-reviewed validation published at EPTC 2025; 240× to 360× speed improvements demonstrated in customer benchmarks. ## Competitive Advantages - **Physics-native AI foundation model** that inherently respects governing laws – not a generic LLM. - **No meshing required** – works directly with native CAD/layout files (OASIS, GDS, IPC-2581) preserving full design fidelity. - **No customer data needed** – model generalizes out-of-the-box without retraining. - **Deterministic, solver-accuracy** (<2% deviation from traditional FEA) at 1000× speed, making it production-grade. ## Strategic Focus - **Current priorities**: Deepen adoption in semiconductor packaging and electronics thermal simulation; expand into adjacent hardware domains (e.g., automotive, aerospace) where full-resolution physics simulation is critical. - Continue validating through peer-reviewed research and scaling the platform to handle extreme degrees of freedom (100+ million elements). ## Why Work Here - **Culture**: Founded by AI and simulation experts from Stanford/UC Riverside; team includes world-class simulation engineers and AI researchers (former Carbon, NVIDIA, Zoox engineers). - **Work environment**: Startup pace with strong research and engineering focus – technical roles dominate (57% of headcount). - **Funding & stability**: Well-backed by top-tier VCs; runway from $36M+ Series A. - **Flexibility**: Offices in Palo Alto and Redwood City, CA; not explicitly stated as remote-first, but typical of early-stage deep-tech startups. - **Engineering culture**: Focus on building a foundation model for physics using Python, PyTorch, CUDA, Kubernetes, Docker, and simulation tools like Ansys Icepak/FloTHERM. ## Sources 1. [getvinci.ai (Home)](https://www.getvinci.ai/) 2. [getvinci.ai (Team)](https://www.getvinci.ai/team/) 3. [getvinci.ai (Newsroom)](https://www.getvinci.ai/newsroom/) 4. [linkedin.com (Company Page)](https://www.linkedin.com/company/vinci4d-ai) 5. 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