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ML Platform Engineer Jobs

22 Job Offers

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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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Staff ML Engineer, Inference Platform
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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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Sr Staff ML Engineer - Production & MLOps Focus - GenAI Security Platform
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Seeking a Senior Staff ML Engineer in Bengaluru to build and scale our GenAI Security Platform. You will deploy LLM-based agents, optimize fine-tuning, and manage production MLOps on Kubernetes. Ideal candidates have 4+ years of ML engineering with hands-on LLM/NLP, model serving, and a strong fo...
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India , Bengaluru
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Not provided
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Palo Alto Networks
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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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Senior ML Infrastructure Engineer, Inference Platform
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Join GM's ML Inference Platform team as a Senior Engineer. Design and optimize the core platform serving SOTA models for autonomous vehicles and AI products. Leverage your expertise in ML inference, frameworks like Triton or vLLM, and high-performance backend systems. Enjoy top benefits in Austin...
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United States , Austin, Texas; Mountain View, California; Sunnyvale, California
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155420.00 - 395900.00 USD / Year
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General Motors
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Senior Staff Data Engineer- ML & AI Platform
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Lead the evolution of the ML/AI Platform at Marktplaats in Amsterdam. Architect scalable solutions for both traditional ML and cutting-edge GenAI, including LLM infrastructure and RAG workflows. This senior role requires deep expertise in Spark, MLOps, and high-concurrency model serving. Enjoy a ...
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Netherlands , Amsterdam
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Not provided
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Adevinta
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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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Full Stack Engineer, ML Platform
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Germany , Berlin
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Prior Labs
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Senior Software Engineer, ML Platform
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United States , San Francisco
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230000.00 - 265000.00 USD / Year
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Parafin
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Senior ML Platform Engineer, AI Platform
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Singapore , Singapore
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Airwallex
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Senior Software Engineer II, ML Platform
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Join Dandy as a Senior Software Engineer II for the ML Platform. Build the core infrastructure for massive 3D datasets and production-grade generative models in a cloud-native environment (GCP/Kubernetes). This Brazil-based role requires 5+ years of ML platform experience, focusing on scalable tr...
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Brazil
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Dandy
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Senior Software Engineer I - ML Platform
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Join Dandy as a Senior Software Engineer I - ML Platform in New York. Build the core infrastructure for our global dental tech OS, scaling ML pipelines for massive 3D datasets. You'll need 5+ years of ML/platform engineering experience with cloud (GCP/AWS/Azure) and Kubernetes. Enjoy equity, heal...
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United States , New York NY
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181000.00 - 213000.00 USD / Year
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Dandy
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Senior Engineering Manager, ML Platform
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Lead the development of a scalable ML Platform powering AI and LLM applications at Whatnot. This hands-on management role requires deep technical expertise in production ML systems, low-latency serving, and real-time feature pipelines. Enjoy top benefits while shaping cutting-edge infrastructure ...
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United States , San Francisco, CA; Los Angeles, CA; New York, NY; Seattle, WA
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255000.00 - 345000.00 USD / Year
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Whatnot
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ML Platform Engineer
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Join our team in Tel-Aviv as an ML Platform Engineer. You will design and build the core infrastructure and pipelines, using Python and cloud platforms, to power our digital health initiatives. Collaborate directly with data scientists on model development and deployment. Enjoy a hybrid model, st...
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Israel , Tel-Aviv
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K Health
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Software Engineer (ML Platform)
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Netherlands , Amsterdam
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Together AI
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Principal ML Engineer, ML Platform Engineering
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Lead the core ML platform at Xometry, designing scalable AWS infrastructure for AI products like the Instant Quoting Engine®. This high-visibility role requires 7+ years of experience and hands-on technical leadership in the full ML lifecycle. Enjoy a collaborative culture in North Bethesda with ...
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United States , North Bethesda
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140000.00 - 182000.00 USD / Year
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Cherry Ventures
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ML Platform Engineer
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Join Duetto as an ML Platform Engineer to build and scale AWS-native machine learning infrastructure. You will develop reusable tooling for the full ML lifecycle, supporting thousands of hotel-specific models. This role requires strong Python, AWS (SageMaker, EKS), and Kubernetes skills, plus exp...
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United States
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Duetto
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Sr. Staff ML Platform Engineer
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Lead the development of a cutting-edge ML platform at EarnIn in Mountain View. This hands-on leadership role requires 8+ years of experience, expertise in Python, TensorFlow/PyTorch, and cloud platforms like AWS SageMaker. You will design the full ML lifecycle tooling, mentor a talented team, and...
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United States , Mountain View
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360000.00 - 440000.00 USD / Year
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EarnIn
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Senior Platform Engineer, ML Data Systems
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Join Khan Academy as a Senior Platform Engineer for ML Data Systems. Design and deploy scalable dataset management frameworks using Go, Python, and Airflow on GCP. Ensure clean, representative data for AI tutoring by collaborating with engineering and labeling teams. This remote-first role offers...
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United States , Mountain View
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137871.00 - 172339.00 USD / Year
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Khan Academy
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Senior ML Platform Engineer
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Join WHOOP in Boston as a Senior ML Platform Engineer. You will scale our ML infrastructure and build robust MLOps platforms on AWS. This role requires 5+ years of experience in Python, cloud-native services, and tools like MLflow and Kubernetes. Your work will directly empower our Data Science t...
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United States , Boston
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150000.00 - 210000.00 USD / Year
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Whoop
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Explore the world of ML Platform Engineer jobs, a critical and growing profession at the intersection of software engineering, cloud infrastructure, and machine learning operations (MLOps). ML Platform Engineers are the architects and builders of the foundational systems that enable data scientists and machine learning practitioners to develop, deploy, and maintain models at scale. They focus on creating robust, automated, and efficient platforms that abstract away infrastructure complexity, allowing AI/ML teams to focus on innovation rather than operational overhead. Professionals in this role are responsible for designing, implementing, and maintaining the entire machine learning lifecycle infrastructure. This typically involves architecting cloud-native solutions on platforms like AWS, GCP, or Azure using infrastructure-as-code principles. A core duty is building and managing MLOps frameworks that standardize model development, experimentation, training, and deployment. They develop CI/CD pipelines specifically tailored for ML models, ensuring rigorous testing, version control, and reproducible workflows. ML Platform Engineers also create and maintain core services such as feature stores, model registries, and experiment tracking systems using tools like MLflow or Kubeflow. They build scalable serving infrastructure for both real-time and batch inference, often containerizing models with Docker and orchestrating them with Kubernetes. Furthermore, they implement comprehensive monitoring and observability tooling to track model performance, detect data drift, and trigger alerts for accuracy degradation, ensuring models remain healthy and effective in production. The typical skill set for ML Platform Engineer jobs is multifaceted. Strong software engineering fundamentals are paramount, with proficiency in Python being almost universal. Deep expertise in cloud services, containerization, and orchestration (Docker, Kubernetes) is essential. Practical experience with MLOps tools and frameworks for workflow orchestration (e.g., Airflow, Prefect, Argo) and model management is required. A solid understanding of machine learning concepts and the data science workflow is necessary to build empathetic and effective platforms for ML practitioners. Skills in building and maintaining APIs, data pipelines, and storage systems are also common. Importantly, successful candidates possess strong cross-functional collaboration skills to partner with data science and product teams, translating business needs into technical specifications. They are problem-solvers focused on automation, reliability, scalability, and cost-efficiency, ultimately empowering organizations to harness the full potential of their machine learning initiatives through a world-class internal platform.

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