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ML Engineer Jobs (On-site work)

55 Job Offers

Senior Software Engineer - Matching ML Platform
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Join Uber's Matching ML Platform team as a Senior Software Engineer. You will architect and scale a low-latency platform for millions of real-time match decisions per second. This role requires expertise in distributed systems, ML infrastructure, and a language like Java or Go. Based in Seattle, ...
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United States , Seattle; San Francisco; Sunnyvale
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202000.00 - 224000.00 USD / Year
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Uber
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Staff ML Infrastructure Engineer
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United States , Austin, Texas; Sunnyvale, California
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197000.00 - 326000.00 USD / Year
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General Motors
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ML Engineer, Training Infrastructure
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Germany; United States , Berlin; Freiburg; New York; San Francisco
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Not provided
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Prior Labs
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ML Engineer, Cloud Platform
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Germany; United States , Berlin; Freiburg; New York; San Francisco
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Not provided
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Prior Labs
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ML Infra Engineer (Data Systems)
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United States , San Francisco
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Not provided
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Physical Intelligence
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ML Infra Engineer
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United States , San Francisco
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Physical Intelligence
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Senior ML Engineer
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India , Bangalore
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Uber
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Senior ML Platform Engineer, AI Platform
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Singapore , Singapore
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Not provided
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Airwallex
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ML Engineer - Personalization & Recommendation Systems
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United States , San Francisco
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Krea
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Research Engineer - Computer Vision ML
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United States , San Francisco
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190000.00 - 320000.00 USD / Year
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Sesame
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Embedded ML Engineer – Gesture Recognition
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United States , San Francisco; Bellevue
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175000.00 - 280000.00 USD / Year
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Sesame
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ML Model Serving Engineer
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United States , San Francisco; New York; Bellevue
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175000.00 - 280000.00 USD / Year
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Sesame
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ML Engineer
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United States , New York; San Francisco; Bellevue
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190000.00 - 320000.00 USD / Year
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Sesame
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ML Research Engineer
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United Kingdom , London
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Recraft
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ML Data Engineer
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United Kingdom , London
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Recraft
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Software Engineer - Applied ML
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United Kingdom , London
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Cohere
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ML Ops Engineer, Central Software
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United States , Waltham
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Boston Dynamics
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Software Engineer: ML Infra
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Join our team as a Software Engineer specializing in ML Infrastructure. You will manage large-scale GPU fleets for training massive robot foundation models and real-time robot inference. We require deep expertise in Slurm/Kubernetes, high-scale ML data loaders, and the full Nvidia stack. This rol...
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United States , San Mateo; Somerville
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200000.00 - 350000.00 USD / Year
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Generalist AI
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Software Engineer: ML Robotics Systems
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Join our team as a Software Engineer for ML Robotics Systems. You will design and build scalable, distributed data pipelines and services to power advanced AI on robots. This role requires deep Python expertise, modern ML fundamentals, and experience with large-scale cloud infrastructure. Based i...
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United States , San Mateo; Somerville
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200000.00 - 350000.00 USD / Year
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Generalist AI
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ML Engineer II
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Join Uber's Earners team in Bangalore as an ML Engineer II. Design and scale AI/LLM-powered backend systems using Python and frameworks like LangGraph. Focus on building a next-generation agent to resolve complex access issues, targeting high precision and low latency in a collaborative environment.
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India , Bangalore
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Uber
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About the ML Engineer role

Explore the dynamic and in-demand field of Machine Learning Engineering through our comprehensive guide to ML Engineer jobs. A Machine Learning Engineer is a specialized professional who bridges the gap between data science and software engineering, focusing on designing, building, and deploying scalable ML systems into production. Unlike purely research-oriented roles, ML Engineers are responsible for the entire lifecycle of a machine learning model, ensuring it transitions from a conceptual experiment to a reliable, high-performance application that delivers real-world value.

Professionals in this role typically engage in a wide array of responsibilities. They design and implement robust data pipelines to feed model training, select and tune appropriate algorithms, and rigorously evaluate model performance. A core aspect of the job is deployment engineering, which involves packaging models into APIs or services, often using containerization tools like Docker and orchestration platforms like Kubernetes. Post-deployment, ML Engineers establish continuous monitoring systems to track model performance, data drift, and inference latency, ensuring systems remain accurate and efficient over time. They work closely with data scientists to operationalize prototypes and with software engineers to integrate ML components seamlessly into larger applications and microservices architectures.

The skill set for ML Engineer jobs is both deep and broad. Proficiency in Python is fundamental, alongside extensive experience with ML frameworks such as PyTorch and TensorFlow. Strong software engineering principles are non-negotiable, including writing clean, maintainable, and tested code. Candidates must understand cloud platforms (AWS, GCP, Azure) and infrastructure-as-code. Expertise in MLOps practices is increasingly critical, encompassing CI/CD pipelines for ML, model versioning, and experiment tracking tools. A solid foundation in data structures, algorithms, and system design is essential for optimizing inference speed and resource utilization. Soft skills like problem-solving, clear communication, and the ability to collaborate in cross-functional teams are equally important.

Typical requirements for these positions often include a degree in computer science, data science, or a related quantitative field, coupled with hands-on experience in bringing machine learning models to production. The profession offers a challenging yet rewarding career path for those passionate about creating intelligent systems that operate at scale. Whether you are an experienced engineer or looking to transition into this cutting-edge domain, understanding these core responsibilities and skills is the first step toward securing a role in ML Engineer jobs, where you can build the intelligent infrastructure of tomorrow.