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Machine Learning Systems Engineer Jobs

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Senior Machine Learning System Engineer
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Join Atlassian's AI & ML Platform team as a Senior ML System Engineer. You will build core infrastructure for ML model lifecycle management, using Java/Kotlin, Python, and AWS. This remote US role offers a chance to impact millions of users while enjoying health benefits and paid volunteer time.
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United States , Seattle; San Francisco; New York; Austin
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165500.00 - 265800.00 USD / Year
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Atlassian
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Principal Machine Learning System Engineer
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Lead the design and deployment of scalable ML systems and infrastructure in Seattle or San Francisco. Translate complex models into production-ready solutions, optimizing performance and reliability. Drive architectural decisions for cloud-based platforms while mentoring teams and promoting MLOps...
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United States , Seattle; San Francisco
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190300.00 - 305600.00 USD / Year
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Atlassian
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Senior Principal Machine Learning Systems Engineer
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Lead the development of foundational AI infrastructure at Atlassian as a Senior Principal ML Engineer. You will design systems, train complex models, and integrate AI capabilities across products. Requires 10+ years of ML experience, expertise in Python/Java, and cloud data platforms. Based in Se...
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United States , Seattle; San Francisco; Austin
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243100.00 - 407200.00 USD / Year
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Atlassian
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Senior Machine Learning Systems Engineer
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Join Atlassian in Bengaluru as a Senior Machine Learning Systems Engineer. Build core infrastructure to democratize ML/AI for products like Jira. Leverage your expertise in Java/Kotlin, AWS, and LLMs to develop scalable, high-performance systems. Enjoy health coverage, paid volunteer days, and we...
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India , Bengaluru
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Not provided
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Atlassian
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Principal Machine Learning Systems Engineer
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Lead the scaling of machine learning systems for Atlassian's Search Platform. Utilize your 10+ years of software engineering expertise (Java/Python) to architect solutions for massive data sets (50+ TB). Enjoy a flexible remote/office work model while mentoring a team and solving complex infrastr...
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Atlassian
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Senior Machine Learning System Engineer
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Join Atlassian's AI & ML Platform team as a Senior Machine Learning System Engineer. You will build core infrastructure for ML model lifecycle management, collaborating with product teams like Jira. We require 5+ years in ML systems, large-scale design, Python, and MLOps. Enjoy comprehensive bene...
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Atlassian
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Principal Machine Learning System Engineer
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Lead the development of Atlassian's core AI/ML infrastructure as a Principal Engineer. Design scalable systems for the full ML lifecycle, from data to deployment, using Python and PyTorch/TensorFlow. Your work will empower teams across Jira and Confluence to build AI features for millions. This r...
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Atlassian
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Machine Learning Systems Engineer
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Join Atlassian's AI & ML Platform team as a Machine Learning Systems Engineer. Build and scale core infrastructure for ML model lifecycle and LLM access for products like Jira. Leverage your expertise in Java/Kotlin, AWS, and distributed systems to solve complex architecture challenges. Enjoy hea...
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United States
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145800.00 - 229125.00 USD / Year
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Atlassian
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Senior Machine Learning Systems Engineer
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Join our team as a Senior Machine Learning Systems Engineer to revolutionize AI in Jira. You will design and deploy end-to-end ML systems, fine-tune LLMs, and build RAG solutions using Python and PyTorch/TensorFlow. Collaborate with cross-functional teams to deliver impactful AI features for mill...
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Atlassian
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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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Zyphra
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Senior Machine Learning Systems Engineer
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Join Abridge in San Francisco as a Senior Machine Learning Systems Engineer. You will build and optimize core ML infrastructure, focusing on scalable Kubernetes clusters and high-performance model serving. Expertise in production ML, distributed systems, and container orchestration is key. Enjoy ...
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United States , San Francisco
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221000.00 - 260000.00 USD / Year
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Abridge
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Explore the world of Machine Learning Systems Engineer jobs, a critical and rapidly growing career path at the intersection of software engineering, data science, and infrastructure. These professionals are the architects and builders of the robust, scalable platforms that power intelligent applications. While data scientists focus on creating predictive models, Machine Learning Systems Engineers are responsible for everything that happens after the model is built, transforming theoretical algorithms into reliable, high-performance production services that serve millions of users. A Machine Learning Systems Engineer typically bridges the gap between data science and production-ready systems. They work closely with data scientists to understand model requirements and then design, build, and maintain the infrastructure needed to deploy, serve, and monitor these models at scale. Their work ensures that machine learning solutions are not just accurate, but also scalable, reliable, secure, and efficient. This involves a deep focus on the entire ML lifecycle, a practice often referred to as MLOps (Machine Learning Operations). Common responsibilities for professionals in these roles include designing and building backend systems, APIs, and microservices to serve model inferences. They develop and maintain robust data pipelines for both training and inference, often leveraging stream processing tools like Kafka. A significant part of their role involves implementing and managing CI/CD pipelines specifically tailored for machine learning models to enable rapid and safe iteration. They are also tasked with optimizing model inference for low latency and high throughput, managing infrastructure on platforms like Kubernetes, and ensuring the overall health and monitoring of ML systems in production. Troubleshooting complex issues and ensuring high availability are daily challenges. The typical skill set required for Machine Learning Systems Engineer jobs is a powerful blend of software engineering and machine learning knowledge. Proficiency in Python is almost universal, along with expertise in web frameworks like FastAPI or Flask. Strong software engineering fundamentals are paramount, including knowledge of system design, distributed systems, and containerization with Docker and Kubernetes. A solid understanding of databases, both SQL and ORMs like SQLAlchemy, is essential. Crucially, they must possess a working knowledge of machine learning concepts and MLOps tools and principles, such as experiment tracking, model versioning, and model serving. Familiarity with cloud platforms (AWS, GCP, Azure) and infrastructure-as-code is highly valued. For those seeking Machine Learning Systems Engineer jobs, a background in Computer Science or a related field is typically expected, coupled with a passion for building resilient systems that bring artificial intelligence to life.

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