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ML Engineer United States Jobs

98 Job Offers

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Forward Deployed ML Engineer
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United States , New York
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170000.00 - 190000.00 USD / Year
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Helpcare AI
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Lead Engineer, ML Network Stack - Annapurna Labs
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United States , Seattle; Cupertino
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168100.00 - 261500.00 USD / Year
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Amazon Pforzheim GmbH
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ML Engineer
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Seeking an experienced **ML Engineer** to lead AI/ML solution design and deployment in **Riviera Beach, United States**. This role demands 5+ years of expertise in **TensorFlow, PyTorch, MLOps (MLflow, Kubeflow)**, and cloud platforms (**AWS SageMaker, GCP, Azure**). You will architect scalable d...
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United States , Riviera Beach
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Not provided
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Robert Half
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Ml validation engineer - early career
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Join a cutting-edge team in Sunnyvale as an ML Validation Engineer (Early Career). You'll advance applied ML research for robotics and autonomous driving, focusing on simulation-based validation, performance observability, and scenario coverage automation. Requires a B.Sc/MS in ML or related fiel...
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United States , Sunnyvale
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General Motors
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ML Engineer
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Join our team in Los Angeles as an ML Engineer. Design and deploy scalable machine learning solutions for real-time financial trading systems. Utilize Python, AWS, and ML frameworks like TensorFlow to build production-ready APIs and data pipelines. We offer comprehensive benefits including medica...
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United States , Los Angeles
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50.00 - 60.00 USD / Hour
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Solomon Page
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Senior ML Engineer
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Seeking a Senior ML Engineer with a strong financial trading background in Irvine. Design and deploy production-grade machine learning models and infrastructure for equity or fixed income trading platforms. Requires expertise in Python, TensorFlow/PyTorch, and converting prototypes into robust, s...
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United States , Irvine
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54.00 - 66.00 USD / Hour
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Solomon Page
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Staff ML Engineer, Inference Platform
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Lead the development of GM's cutting-edge, cloud-agnostic ML Inference Platform. You will design core backend systems, optimize model serving for SOTA AI, and maximize GPU utilization. This role requires 8+ years of ML systems experience and expertise in frameworks like Triton or vLLM. Join us in...
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United States , Sunnyvale
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185500.00 - 270000.00 USD / Year
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General Motors
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Lead Applied ML Engineer
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Lead Applied ML Engineer role for a remote US candidate. Drive end-to-end AI solution development in healthcare, specializing in GenAI, LLM orchestration, and full-stack prototyping. Requires a Master's degree or 10+ years' experience, GCP expertise, and proven leadership in ML/AI. Build scalable...
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United States , Remote
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144000.00 - 186000.00 USD / Year
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Baptist Health
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Sr Staff ML Engineer - Applied AI
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Lead the technical vision for AI-native discovery at Uber as a Senior Staff ML Engineer. Define the architecture for foundational models powering search, recommendations, and conversational AI across Mobility and Delivery. This San Francisco-based role requires 12+ years of ML expertise, deep lea...
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United States , San Francisco
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267000.00 - 297000.00 USD / Year
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Uber
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Director SW Engineering (ML Engineering and Platform)
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Lead the future of AI security as a Director of Software Engineering for Prisma AIRS in Santa Clara. You will define the technical vision, scale engineering teams, and drive development of this industry-defining cloud-native platform. This role requires 12+ years of software development experienc...
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United States , Santa Clara
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232000.00 - 320750.00 USD / Year
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Palo Alto Networks
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Principal ML Engineer - Embodied AI Scaling Foundations
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Lead the development of embodied AI at GM as a Principal ML Engineer. Design and scale foundational models for autonomous vehicles using PyTorch and large-scale training pipelines. This Mountain View role offers a comprehensive benefits package and the chance to shape the future of mobility.
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United States , Mountain View
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General Motors
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Staff ML Engineer - Embodied AI Scaling Foundations
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Join General Motors as a Staff ML Engineer in Sunnyvale, CA. You will design and implement ML solutions for autonomous driving, leveraging foundation models and scaling training pipelines. This role requires expertise in PyTorch, real-world ML deployment, and cross-functional collaboration. We of...
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United States , Sunnyvale, California
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189000.00 - 300000.00 USD / Year
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General Motors
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Senior AI / ML Engineer
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Shape the AI strategy at a leading Chicago trading firm. Build and deploy impactful AI tools for engineers, quants, and traders. Requires 7+ years' experience, LLM expertise, and Python proficiency in a demanding financial environment. Enjoy top benefits including meals, wellness, and generous le...
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United States , Chicago
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175000.00 - 250000.00 USD / Year
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Chicago Trading Company
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Software Engineer - ML and Distributed Systems
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Join AWS Applied AI to build innovative ML and distributed systems at scale. As a Software Engineer, you'll design and code solutions for Amazon Personalize, a deep learning service. This role in Mountain View requires 3+ years of development experience and expertise in full lifecycle SDLC. We of...
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United States , Mountain View
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165200.00 - 223600.00 USD / Year
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Amazon Pforzheim GmbH
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Senior ML Compiler Engineer
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Join GM's AV team in Austin to pioneer ML compiler technology for self-driving vehicles. Develop production-grade compilation toolchains for perception and prediction models using PyTorch, TensorFlow, and MLIR. Optimize performance and latency for safety-critical systems. Enjoy comprehensive bene...
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United States , Austin
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128700.00 - 261300.00 USD / Year
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General Motors
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Staff ML Compiler Engineer
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Lead the AI compilation stack as a Staff ML Compiler Engineer in Austin. You will architect the toolchain to deploy optimized models for autonomous driving, using PyTorch/TensorFlow and MLIR/XLA. This role requires 5+ years of compiler expertise and production C++/Python skills. Enjoy comprehensi...
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United States , Austin
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185100.00 - 335300.00 USD / Year
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General Motors
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Senior ML Infrastructure Engineer - Embodied AI
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Join GM's Embodied AI team as a Senior ML Infrastructure Engineer in Sunnyvale. Design and deploy scalable platforms for machine learning training and evaluation to advance autonomous driving. Leverage 3+ years of experience with large-scale distributed systems, cloud infrastructure, and producti...
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United States , Sunnyvale
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153200.00 - 234100.00 USD / Year
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General Motors
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Staff ML Infrastructure Engineer - Embodied AI
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Lead scalable ML infrastructure for autonomous vehicles at GM's Embodied AI team. Design robust platforms for model training and evaluation using Python/C++ on cloud systems. This Sunnyvale role requires 5+ years in distributed systems and MLOps, offering comprehensive benefits and relocation sup...
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United States , Sunnyvale
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189300.00 - 290700.00 USD / Year
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General Motors
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Principal ML Engineer - Large Scale Training Performance Optimization
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Join our Models and Applications team as a Principal ML Engineer. Optimize large-scale distributed training of generative AI models on AMD GPUs using PyTorch/JAX. Drive performance improvements in the end-to-end pipeline and contribute to open source. This role is based in San Jose or Bellevue, USA.
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United States , San Jose; Bellevue
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226400.00 - 339600.00 USD / Year
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AMD
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Lead Applied ML Engineer
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Lead the development of production-grade AI solutions in healthcare. This remote US role requires a Master's degree or 10+ years of experience, GCP expertise, and full-stack ownership from LLM orchestration to deployment. Apply your leadership in ML/AI to build scalable, secure systems.
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United States , Remote
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Salary
144000.00 - 186000.00 USD / Year
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Baptist Health
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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.

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