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MLOps Engineer Jobs (Hybrid work)

9 Job Offers

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MLOps Engineer
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Seeking an experienced MLOps Engineer for a global team based in Tokyo, offering significant WFH flexibility. You will deploy and manage ML models in production using Python, cloud platforms (Azure ML/AWS), and MLOps tools like Docker/Kubernetes. This role requires 5+ years in MLOps/DevOps and a ...
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Japan , Tokyo
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8000000.00 - 10000000.00 JPY / Year
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Randstad
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Staff MLOps Engineer
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Join Inworld AI as a Staff MLOps Engineer in Mountain View. Design and scale the core infrastructure for intelligent AI agents, leveraging your 7+ years in software engineering and deep cloud/Kubernetes expertise. You will build robust MLOps systems and CI/CD pipelines, ensuring performance and r...
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United States , Mountain View
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180000.00 - 280000.00 USD / Year
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Inworld AI
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Software Engineer (MLOps)
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Join HSBC's Financial Crime IT team as an MLOps Software Engineer in Poland. Develop and scale a secure generative AI platform on GCP Vertex AI to accelerate financial crime investigations. Utilize your strong Python skills and MLOps expertise in CI/CD, model deployment, and pipeline management. ...
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Poland
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Not provided
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HSBC
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Senior MLOps Engineer
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Join IT Genetics as a Senior MLOps Engineer in Bucharest. Design automated ML training architectures and manage CI/CD pipelines using Python, PyTorch, and TensorFlow. Enjoy a hybrid model, medical subscription, bonuses, and a role where your expertise in scalable deployment and monitoring truly m...
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Romania , Bucharest
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Not provided
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IT Genetics Romania
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Staff MLOps Engineer
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Join a leading ad-tech company as a Staff MLOps Engineer in Tel Aviv. Design and own a scalable ML platform, ensuring reliability and performance for production models. Leverage your expertise in Java, Python, and distributed systems within a hybrid work model. Enjoy comprehensive benefits and a ...
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Israel , Tel Aviv
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Taboola
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Senior MLOps Engineer, ML Platform
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Join our ML Platform Team in Berlin as a Senior MLOps Engineer. Design scalable systems to deploy ML/AI algorithms into production, using Python and MLOps best practices. Enjoy a flexible, global work policy, a personal growth budget, and team events. Help us reduce time-to-market and operational...
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Germany , Berlin
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GetYourGuide
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Senior MLOps Engineer, Foundational Data Products
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Join our Berlin team as a Senior MLOps Engineer for Foundational Data Products. You will design scalable ML systems, apply MLOps best practices, and collaborate with product teams to deploy data products powering the entire organization. We seek a Python expert with cloud infrastructure and data ...
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Germany , Berlin
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GetYourGuide
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Senior MLOps Engineer
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Join our team as a Senior MLOps Engineer to build the core infrastructure for large-scale multimodal AI. You will architect high-performance, distributed systems using Python, Kubernetes, and cloud platforms to train and serve models to millions. This foundational role in Palo Alto or London offe...
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United States; United Kingdom , Palo Alto; London
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187500.00 - 395000.00 USD / Year
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Luma AI
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MLOps Engineer
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Join Barclays in Noida as an MLOps Engineer. You will design data pipelines, apply ML/AI solutions, and ensure data quality using Python, AWS, and Kubernetes. This role offers modern workspaces, wellness facilities, and a collaborative culture. Leverage your expertise in MLflow and CI/CD to drive...
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India , Noida
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Not provided
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Barclays
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Master the intersection of machine learning and operations by exploring MLOps Engineer jobs, a critical and rapidly growing profession at the heart of modern AI. An MLOps (Machine Learning Operations) Engineer is a specialized professional responsible for bridging the gap between data science and IT operations. Their primary mission is to design, build, and maintain robust, scalable, and efficient pipelines for deploying, monitoring, and managing machine learning models in production environments. While data scientists focus on building and experimenting with models, MLOps Engineers ensure those models can be reliably and continuously delivered to end-users, transforming prototypes into powerful, business-driving applications. Professionals in these roles typically shoulder a wide array of responsibilities centered on the entire ML lifecycle. A core duty involves designing and implementing automated CI/CD (Continuous Integration/Continuous Deployment) pipelines specifically tailored for machine learning. This includes automating the training, testing, validation, and deployment of models. They are also tasked with robust model versioning and management, tracking not just code but also data sets, parameters, and metrics to ensure full reproducibility of experiments. Another critical responsibility is establishing comprehensive monitoring and observability frameworks. This goes beyond traditional application monitoring to include tracking model performance metrics like accuracy and drift, data quality, and infrastructure health to trigger retraining or rollbacks automatically. Furthermore, MLOps Engineers design and manage the underlying cloud infrastructure using Infrastructure as Code (IaC) principles, ensuring the ML platform is scalable, cost-effective, and secure. Collaboration is key; they work closely with Data Scientists, Machine Learning Engineers, and Data Engineers to create a seamless, integrated system. To succeed in MLOps Engineer jobs, individuals typically need a strong and diverse skill set. Proficiency in programming, especially Python, is fundamental, alongside experience with popular ML libraries like TensorFlow or PyTorch. A deep understanding of cloud platforms (such as AWS, Azure, or GCP) is essential for building and deploying scalable solutions. Expertise in containerization technologies like Docker and orchestration systems like Kubernetes is a standard requirement for creating portable and manageable environments. Mastery of DevOps tools and practices is crucial, including Git for version control, Jenkins, GitLab CI, or similar tools for pipeline automation, and Terraform or CloudFormation for infrastructure management. Knowledge of specialized MLOps tools for experiment tracking (e.g., MLflow) and model registries is also highly valued. Soft skills are equally important; strong problem-solving abilities, effective cross-functional communication, and a systematic approach to tackling complex challenges are what distinguish top talent. If you are passionate about building the reliable infrastructure that powers the AI revolution, exploring MLOps Engineer jobs could be your ideal career path. This role is perfect for those who enjoy optimizing systems, automating complex processes, and ensuring that cutting-edge machine learning delivers consistent, real-world value.

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