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Machine Learning Engineer (Physics-AI)

Slope - San Francisco, CA

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Job Description

LocationSan Francisco Employment TypeFull time Location TypeOn-site DepartmentScience & Engineering Compensation$160K – $210K • Offers Equity About StandStand is a new technology and insurance company revolutionizing how society assesses, mitigates, and adapts to climate risks. Our leadership team has extensive experience in insurance, technology, and climate science: building billions in market value at prior ventures. At Stand, we are rethinking how insurance enables proactive, science-driven resilience. Existing insurance models often rely on broad exclusions, leaving homeowners without options. At Stand, we leverage advanced deterministic models and cutting-edge analytics to provide personalized risk assessments—helping homeowners secure coverage and take proactive steps toward resilience. BackgroundHomes respond differently to climate catastrophes like wildfire — but until now, we’ve lacked the tools to measure that risk at the individual level. At Stand, we combine deterministic physics models with cutting-edge AI to deeply understand a home’s unique risk environment. This enables broader insurance access, incentivizes proactive mitigation, and helps communities become more resilient. The RoleWe are looking for aPhysics-AI-oriented Machine Learning Engineer who can do some Computer Vision,ratherthan a Computer Vision-focused MLE that can do some Physics-AI . On the Applied Science team, we build machine learning models that power Stand’s risk analytics and climate resilience platform. We combine AI, embedded physics, and spatial intelligence into scalable tools that directly influence underwriting, pricing, and customer decision-making. As a Machine Learning Engineer, you’ll own projects end-to-end — designing, training, and deploying models that deliver both immediate and long-term business impact. You’ll thrive in a fast-moving startup environment, collaborating across Applied Science and the broader company to turn technical breakthroughs into production-ready solutions. Your focus will be on creating multimodal, physics-aware models that accelerate physical modeling by orders of magnitude, adapt to diverse perils, and leverage the latest methods in the field. If you’re eager to push the boundaries of applied machine learning, contribute to scaling classical simulation methods by 1000x, and help provide insurance for homes in climate-stressed areas—all while creating immense value from the ground up—this position is for you! You’ll partner with other MLEs and drive forward initiatives such as: Developing flagship physics-informed deep learning models Advancing multimodal modeling with data augmentation and sensor fusion Applying 3D computer vision for digital twin annotation Scaling spatial data analysis into production workflows This Role WillDesign, train, and deploy ML models acrossphysics-informed AI, computer vision, and multimodal learning Own projects end-to-end , fromprototyping through production , with emphasis on reliability and business-ready tooling Fine-tune and extend state-of-the-art modelsto accelerate simulation and digital twin pipelines Build scalable ML infrastructure : data pipelines, training methodologies, and evaluation frameworks for real-time risk analytics Collaborate cross-functionallyto integrate models into user-facing workflows Continuously improve model performancethrough monitoring, retraining, and active learning Core Skills (Must-Haves)Strong foundation in ML: proven track record of taking models fromresearch to production(training from scratch, fine-tuning advanced architectures, evaluation across diverse datasets) Hands-on experiencecombining physics-based modeling(finite element, finite volume, finite difference)with machine learningto accelerate or enhance solvers Expertise withcomputer vision and multimodal architectures(e.g., CNNs, ViTs, spatial attention, GNNs) Familiarity withmodern generative and 3D methods(e.g., diffusion, autoregressive, 3D reconstruction) Proficiency in ML frameworks ( PyTorch/TensorFlow ) and production-grade practices ( containers, CI/CD, automated testing, shared libraries ) Ability tostay current with emerging methodsandproactively apply themto business problems Strong cross-disciplinary collaborator who can connect knowledge silos and foster innovation Nice to Have (Helpful, Not Required)Familiarity withAgentic AI frameworks(e.g., LangChain) and their application Experience inearly-stage startupsor high-growth environments requiring rapid iteration Knowledge ofgeospatial/remote sensingecosystems or multimodal Earth observation pipelines Passion for applying ML toreal-world resiliency challengesbeyond purely digital contexts Compensation:The annual base salary range for full-time employees in this position is $160,000 to $210,000 with a meaningful Equity pensation decisions are dependent on several factors including, but not limited to, an individual’s qualifications, the location where the role is to be performed, internal equity, and alignment with market data. Additional Benefits:Comprehensive benefits including above-market Health, Dental, Vision Weekly lunch stipend Flexible time off 401k plan Why Join Stand? At Stand, you’ll be part of a mission-driven team redefining how insurance intersects with climate resilience. This is a unique opportunity to build something transformative—leveraging advanced technology, underwriting expertise, and data-driven insights to create a smarter, more adaptive insurance model. Equal Opportunity Employment Stand is an equal opportunity employer and does not discriminate on the basis of protected veteran status, disability, or other legally protected status. We believe that diversity enriches the workplace, and we are committed to growing our team with the most talented and passionate people from every community. Stand Insurance is committed to providing an inclusive and accessible recruitment process. If you require any accommodations during the application or interview process, please let us know by contacting . We will work with you to ensure you have the support you need to participate fully. Pursuant to the San Francisco Fair Chance Ordinance, we will consider for employment qualified applicants with arrest and conviction records. Compensation Range: $160K - $210KJ-18808-Ljbffr

Created: 2025-09-29

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