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Machine Learning Engineer United States, San Francisco Jobs

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Staff Machine Learning Engineer
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Lead machine learning initiatives for Uber's global consumer incentives. Design and deploy deep learning and optimization systems using PyTorch/TensorFlow to enhance profitability and user experience. This senior role in New York, San Francisco, or Sunnyvale requires 6+ years of ML engineering ex...
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United States , New York; San Francisco; Sunnyvale
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232000.00 - 258000.00 USD / Year
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Uber
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Lead Machine Learning Engineer
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Lead Machine Learning Engineer role at Capital One. Design and build scalable AI/ML systems using Python, Scala, or Java on cloud platforms like AWS. Join a team delivering real-time, personalized banking experiences with LLMs and advanced ML frameworks. Offers competitive benefits in San Francis...
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United States , San Francisco; New York; San Jose; Cambridge; McLean
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197300.00 - 245600.00 USD / Year
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Capital One
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Senior Staff Machine Learning Engineer – AV Labs
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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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Staff Machine Learning Engineer, Dynamic Pricing
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Join Uber's Surge team as a Staff Machine Learning Engineer in San Francisco or Sunnyvale. You will build real-time, large-scale dynamic pricing systems using deep learning and optimization. This role requires a PhD and expertise in PyTorch/TensorFlow to develop production ML models. Enjoy compet...
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United States , San Francisco; Sunnyvale
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232000.00 - 258000.00 USD / Year
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Uber
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Staff Machine Learning Engineer, Money (Founding ML Lead)
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United States , San Francisco; Los Angeles
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137100.00 - 299300.00 USD / Year
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DoorDash
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Senior Staff Machine Learning Engineer
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United States , San Francisco; New York
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284000.00 - 426000.00 USD / Year
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Patreon
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Senior Machine Learning Engineer
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United States , San Francisco; New York
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200000.00 - 300000.00 USD / Year
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Patreon
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Software Engineering Lead, Machine Learning
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United States , San Francisco Bay Area
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135000.00 - 300000.00 USD / Year
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Ema
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Machine Learning Engineer
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United States , San Francisco
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150000.00 - 265000.00 USD / Year
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Orchard Robotics
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Machine Learning Engineer, Distributed Data Systems
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United States , San Francisco
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295000.00 - 445000.00 USD / Year
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OpenAI
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Research Engineer / Machine Learning Engineer - B2B Applications
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United States , San Francisco
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295000.00 - 445000.00 USD / Year
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OpenAI
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Machine Learning Engineer
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United States , San Francisco
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130000.00 - 500000.00 USD / Year
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Mercor
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Machine Learning Engineer
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United States , San Francisco
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Not provided
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Eight Sleep
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Machine Learning Engineer
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United States , San Francisco
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Not provided
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Krea
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Machine Learning Engineer
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United States , San Francisco; New York
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175000.00 - 260000.00 USD / Year
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Middesk
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Senior Machine Learning Platform Engineer
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United States , San Francisco
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180000.00 - 200000.00 USD / Year
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Strava
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Machine Learning Research Engineer - Robotics
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United States , San Francisco
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218400.00 - 273000.00 USD / Year
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Scale
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Senior Machine Learning Engineer, Computer Vision - Robotics
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United States , San Francisco
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218400.00 - 273000.00 USD / Year
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Scale
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Staff Machine Learning Research Engineer, Agent Post-training - Enterprise GenAI
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United States , San Francisco; New York
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218400.00 - 273000.00 USD / Year
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Scale
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Machine Learning Research Scientist / Engineer, Reasoning
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United States , San Francisco; Seattle; New York
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252000.00 - 315000.00 USD / Year
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Scale
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Explore the dynamic and rapidly evolving field of Machine Learning Engineer jobs, a career path that sits at the exciting intersection of data science and software engineering. Machine Learning Engineers (MLEs) are the vital bridge between theoretical data models and real-world, scalable applications. They are responsible for building, deploying, and maintaining the intelligent systems that power modern technology, from recommendation engines and fraud detection to autonomous vehicles and advanced chatbots. Professionals in these roles typically engage in a comprehensive lifecycle of machine learning systems. A core responsibility involves studying and transforming data science prototypes developed by Data Scientists into robust, production-ready software. This requires a deep understanding of both machine learning algorithms and software engineering principles. MLEs research and select appropriate ML algorithms, design scalable data pipelines for model training, and run rigorous tests and experiments to optimize performance. They are tasked with selecting suitable datasets and employing effective data representation methods to ensure model accuracy. A significant part of their work involves the continuous training, retraining, and fine-tuning of systems to adapt to new data and maintain high performance over time. The technical skill set for Machine Learning Engineer jobs is both broad and deep. A strong foundation in programming is essential, with Python being the predominant language in the industry, often supported by knowledge of R, Java, or Scala. Proficiency with machine learning libraries and frameworks such as TensorFlow, PyTorch, scikit-learn, and Keras is a standard requirement. Beyond this, a solid grasp of the underlying mathematics—including linear algebra, calculus, probability, and statistics—is crucial for understanding and innovating upon model architectures. MLEs must also be well-versed in software engineering best practices, including version control systems like Git, and modern development methodologies. As the field advances, experience with MLOps (Machine Learning Operations) practices, cloud platforms (like AWS, GCP, or Azure), and deploying models using containerization (e.g., Docker, Kubernetes) is increasingly important. Furthermore, knowledge of deep learning, neural network architectures, and generative AI techniques is becoming a common expectation for many advanced roles. Successful candidates for these positions typically hold a degree in a quantitative field such as Computer Science, Engineering, Data Science, or Mathematics, with many roles preferring a Master's degree or higher. However, proven experience and a strong portfolio can be equally compelling. Beyond technical prowess, strong problem-solving abilities, critical thinking, and effective communication skills are vital for collaborating with cross-functional teams, including data scientists, product managers, and business analysts. If you are passionate about turning complex algorithms into impactful, scalable solutions, exploring Machine Learning Engineer jobs could be your next career move. This profession offers the opportunity to be at the forefront of technological innovation, solving some of the world's most complex challenges with intelligent systems.

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