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Data / Machine Learning Engineer United States Jobs

10 Job Offers

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Principal Data Scientist - Machine Learning Engineering
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Lead our AI/ML initiatives as a Principal Data Scientist. You will design, build, and deploy advanced NLP/LLM solutions, partnering with cross-functional teams to drive business impact. This remote US role requires 8+ years of experience, expert Python/Java skills, and strong executive communicat...
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United States , Remote
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145300.00 - 233400.00 USD / Year
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Atlassian
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Principal Data Scientist - Machine Learning Engineering
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Lead impactful data science initiatives as a Principal Data Scientist at Atlassian in San Francisco. Leverage your 8+ years of expertise in ML, NLP, and LLMs to uncover customer friction and drive product strategy. You will build models, mentor a team, and enjoy comprehensive benefits in this sen...
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United States , San Francisco
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175100.00 - 233400.00 USD / Year
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Atlassian
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Machine Learning Engineer - Data Foundation and AI
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Join Plaid's Data Foundation & AI team as a Machine Learning Engineer in San Francisco. Design, build, and scale advanced ML/AI systems that power products for millions. You'll need 1-3 years of production ML experience with PyTorch and distributed systems. Enjoy full benefits, equity, and a role...
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United States , San Francisco
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186000.00 - 236400.00 USD / Year
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Plaid
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Machine Learning Engineer - Data Foundation and AI
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Join Plaid's Data Foundation & AI team as a Machine Learning Engineer in New York. Design, build, and scale advanced ML/AI systems that power products for millions. You'll need 1-3 years of production ML experience, proficiency in Python/PyTorch, and expertise in distributed systems and MLOps. En...
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United States , New York
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186000.00 - 236400.00 USD / Year
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Plaid
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Staff Machine Learning Engineer - Fraud Data
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Join Plaid in San Francisco as a Staff Machine Learning Engineer focused on Fraud Data. You will design scalable ML infrastructure for fraud detection using the world's largest financial dataset. We require 8+ years of experience, including 5+ years building production ML systems with Python, PyT...
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United States , San Francisco
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192000.00 - 400000.00 USD / Year
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Plaid
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Staff Machine Learning Engineer - Fraud Data
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Join Plaid's Fraud Data team in New York as a Staff Machine Learning Engineer. Design and build scalable ML infrastructure for cutting-edge fraud detection, leveraging the world's largest financial dataset. Lead the evolution of model deployment and monitoring with Python, PyTorch, and Spark. Req...
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United States , New York
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192000.00 - 400000.00 USD / Year
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Plaid
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Staff Machine Learning Engineer - Fraud Data
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Join Plaid's Fraud Data team in Seattle as a Staff Machine Learning Engineer. You will design and build scalable ML infrastructure for cutting-edge fraud detection, leveraging the world's largest financial dataset. This role requires 8+ years of experience, including 5+ years deploying production...
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United States , Seattle
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192000.00 - 400000.00 USD / Year
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Plaid
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Staff Machine Learning Engineer - Fraud Data
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Join Plaid's Fraud Data team as a Staff Machine Learning Engineer in Washington DC. You will design and build scalable ML infrastructure for cutting-edge fraud detection, leveraging the world's largest financial dataset. This role requires 8+ years of experience, including 5+ years deploying prod...
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United States , Washington DC
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192000.00 - 400000.00 USD / Year
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Plaid
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Junior Data Scientist / Machine Learning Engineer
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Launch your AI/ML career at Red Hibbert Group. As a Junior Data Scientist/Machine Learning Engineer, you'll develop models, analyze data, and build AI-driven solutions using Python, TensorFlow, and PyTorch. Collaborate on cutting-edge projects and grow your skills in a real-world, US-based role.
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United States
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25.00 USD / Hour
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Red Hibbert Group
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Machine Learning Data Engineer - Systems & Retrieval
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Join our team in Palo Alto as a Machine Learning Data Engineer focused on Systems & Retrieval. You will architect high-performance data pipelines and retrieval systems for LLMs, using Python and distributed data systems. This role is central to building scalable, secure infrastructure that powers...
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United States , Palo Alto
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Not provided
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Zyphra
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Explore the dynamic and rapidly evolving field of Data and Machine Learning Engineering jobs. This profession sits at the crucial intersection of data science and software engineering, focused on building, deploying, and maintaining robust, scalable data and AI systems. Unlike data scientists who primarily focus on theoretical models and analysis, Data and Machine Learning Engineers are the architects and builders who translate data insights and prototypes into reliable, production-grade applications that drive real-world business value. They are the backbone of the modern data-driven organization, ensuring that machine learning models don't just work in a lab notebook but perform efficiently and reliably at scale. Professionals in these roles typically engage in a comprehensive lifecycle of data and model management. A core responsibility involves designing and constructing data pipelines. This entails ingesting data from diverse sources, performing extensive data cleaning and validation, and implementing complex feature engineering to create the high-quality datasets necessary for effective model training. Once a model is conceptualized, the Machine Learning Engineer takes the lead on its implementation. This includes selecting appropriate algorithms, writing code using major frameworks, and rigorously training, testing, and validating models to meet performance benchmarks. The role extends far beyond initial development. A significant part of the job is MLOps—the practice of deploying models into live production environments, often leveraging cloud platforms for scalability. This involves containerizing models, creating APIs for easy integration with other business applications, and establishing continuous integration and delivery (CI/CD) pipelines specifically for machine learning. Post-deployment, engineers are responsible for continuous monitoring of model performance, data drift, and concept drift, ensuring models remain accurate and relevant over time and initiating retraining processes as needed. To succeed in Data and Machine Learning Engineering jobs, a specific and robust skill set is required. Technical proficiency is paramount, with Python and SQL being the foundational programming languages. Deep familiarity with machine learning frameworks like TensorFlow, PyTorch, or Scikit-learn is essential. A strong grasp of software engineering principles, including version control (e.g., Git), code testing, and design patterns, is what separates a proficient engineer from a researcher. Experience with cloud services (AWS, Google Cloud, or Microsoft Azure) for compute, storage, and managed ML services is increasingly standard. Furthermore, a solid understanding of data structures, algorithms, and the underlying mathematics of machine learning (linear algebra, calculus, statistics) is critical for optimization and troubleshooting. Finally, strong collaboration and communication skills are vital, as these engineers routinely work with cross-functional teams including data scientists, product managers, and business stakeholders to align technical execution with strategic goals. If you are passionate about building the intelligent systems of tomorrow, exploring Data and Machine Learning Engineer jobs is your next strategic career move.

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