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Senior ML Engineer Jobs

70 Job Offers

Senior ML Software Engineer - Integration & Quality
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United States; Canada , Sunnyvale; Toronto
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Not provided
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Cerebras Systems
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Senior Inference ML Runtime Engineer
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United States; Canada , Sunnyvale; Toronto
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Cerebras Systems
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Senior Research Engineer - Inference ML
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Join Cerebras Systems to advance AI inference on the world's largest chip. As a Senior Research Engineer, you'll design and optimize state-of-the-art transformer models for NLP and computer vision. Leverage your deep ML expertise in Python/C++ to maximize performance on our groundbreaking wafer-s...
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United States; Canada , Sunnyvale; Toronto
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Cerebras Systems
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Senior Software Engineer - Real-Time Workflows & ML Serving
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India , Bangalore
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Microsoft Corporation
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Senior ML Engineer
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Join our Content Platform team as a Senior ML Engineer in Bangalore. You will build core ML capabilities for our customer support chatbot, focusing on retrieval, ranking (RAG, semantic search), and quality observability. Tackle industry-scale problems to directly improve answer relevance and cust...
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India , Bangalore
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Uber
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Senior Software Engineer, AI & ML Ops
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Lead AI innovation for the automotive industry as a Senior Software Engineer at Hyundai AutoEver. Architect and deploy advanced LLM, RAG, and agentic AI solutions on cloud platforms. Leverage 8+ years of experience with Python, TensorFlow/PyTorch, and MLOps to build full-stack, scalable systems. ...
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United States , Irvine
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103170.00 - 158873.00 USD / Year
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Hyundai AutoEver America
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Senior ML Engineer (GenAI)
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Join Provectus as a Senior ML Engineer specializing in Generative AI. Design, develop, and deploy production-grade ML and LLM solutions, including RAG systems, for clients. Leverage your expertise in Python, PyTorch/TensorFlow, and cloud platforms. This role is based in major Colombian cities lik...
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Colombia , Medellín; Bogotá; Cali; Barranquilla; Bucaramanga
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Provectus
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Senior ML Ops Engineer
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Lead the development of impactful AI features for health platforms at Elsevier in Philadelphia. You will bridge data science and engineering, focusing on GenAI, RAG, and search systems using AWS, SageMaker, and MLflow. This role requires strong Python/Java skills and production MLOps experience. ...
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United States , Philadelphia
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95300.00 - 158800.00 USD / Year
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EdTech Jobs
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Senior ML Infrastructure Engineer
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Join Parametric in San Francisco as a Senior ML Infrastructure Engineer. Build the core systems powering our robotics autonomy stack from the ground up. You'll design production-grade infrastructure for the full ML lifecycle, enabling rapid iteration. This early-stage role requires expertise in c...
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United States , San Francisco
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150000.00 - 210000.00 USD / Year
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YC Work at a Startup
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Senior Staff Data Engineer- ML & AI Platform
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Lead the evolution of our ML & AI Platform in Amsterdam. Architect scalable solutions for both traditional ML and cutting-edge GenAI, including LLMs and RAG. Leverage 10+ years in Data Engineering and MLOps to build robust infrastructure and mentor senior engineers. Enjoy a competitive package wi...
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Netherlands , Amsterdam
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Adevinta
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About the Senior ML Engineer role

Senior ML Engineer jobs represent the pinnacle of technical leadership in the rapidly evolving field of artificial intelligence. Professionals in these roles are the critical bridge between theoretical data science and robust, scalable production systems. They are responsible for the entire machine learning lifecycle, transforming prototypes into reliable, high-impact applications that drive business value. A Senior ML Engineer typically possesses a deep blend of software engineering rigor, data architecture expertise, and applied machine learning knowledge, ensuring that models are not just accurate but also efficient, maintainable, and integrated seamlessly into broader technology ecosystems.

The core responsibilities of a Senior Machine Learning Engineer are multifaceted. They design, build, and maintain scalable data pipelines and infrastructure specifically optimized for ML workloads, which includes managing data ingestion, transformation (ETL/ELT), and storage solutions like feature stores and vector databases. A significant part of the role involves developing end-to-end ML pipelines that encompass data preparation, model training, validation, deployment (MLOps), and continuous monitoring in production. This includes implementing automated processes for retraining, performance tracking, and drift detection to ensure model longevity and accuracy. With the rise of Generative AI, these roles increasingly involve productionizing LLM-based applications and agentic workflows, focusing on aspects like latency, cost optimization, and observability. Furthermore, Senior ML Engineers enforce best practices around versioning, testing, and reproducibility using frameworks like MLflow. They ensure all systems adhere to stringent governance, security, and compliance standards while often leading strategic initiatives and mentoring junior team members.

To excel in Senior ML Engineer jobs, candidates generally need a strong foundation in computer science principles, statistics, and software engineering. A relevant Bachelor's or Master's degree is commonly required, coupled with 5+ years of hands-on experience in ML engineering or a closely related field. Proficiency in programming languages like Python and SQL is essential, along with extensive experience with cloud platforms (AWS, Azure, GCP) and big data technologies such as Apache Spark. Deep practical knowledge of machine learning frameworks (e.g., TensorFlow, PyTorch, Scikit-learn) and MLOps tools is mandatory. For modern roles, familiarity with NLP concepts, LLM application development frameworks (e.g., LangChain), and prompt engineering is highly valuable. Beyond technical skills, successful Senior ML Engineers demonstrate strong problem-solving abilities, clear communication to collaborate effectively with data scientists and business stakeholders, and a proactive, agile mindset to navigate the fast-paced AI landscape. They are leaders who drive innovation, set engineering standards, and take ownership of delivering complex, production-ready AI solutions.