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Senior Machine Learning Engineer - Credit United States, Austin Jobs

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Senior Machine Learning Engineer
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Lead our ML platform strategy as a Senior Machine Learning Engineer in Austin. Design and build scalable systems using Python, cloud-native tools, and frameworks like Sklearn. Enjoy a comprehensive benefits package, 401(k) matching, and a collaborative, mentorship-focused environment.
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United States , Austin
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Not provided
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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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Senior Machine Learning Engineering Manager
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Lead a core ML team at Atlassian, building advanced AI/ML models for revenue and forecasting. You'll manage the full ML lifecycle, from research to deployment, using cutting-edge techniques. Requires 5+ years managing ML engineering teams and a quantitative Master's/PhD. Role based in Seattle, Au...
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United States , Seattle; Austin; New York; Washington DC
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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 Software Engineer, Machine Learning
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Join Roku's Voice team in Austin as a Senior Machine Learning Engineer. You will design and develop core algorithms for a state-of-the-art voice system used by millions. This role requires 5+ years of ML experience, expertise in production systems, and skills in NLU, ASR, or LLMs. We offer compre...
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United States , Austin
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Roku
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Explore senior machine learning engineer jobs in the credit industry, a critical domain where advanced AI and data science directly impact financial decision-making, risk assessment, and product innovation. A Senior Machine Learning Engineer specializing in credit is a pivotal role that bridges complex algorithmic development with tangible business outcomes in lending, risk management, and customer financial health. Professionals in this field are responsible for designing, building, and deploying robust machine learning systems that handle sensitive financial data with the highest standards of accuracy, fairness, and scalability. Typically, individuals in these roles tackle the end-to-end machine learning lifecycle tailored to credit-specific challenges. Common responsibilities include developing predictive models for credit scoring, default probability, fraud detection, and behavioral analytics. They engineer sophisticated systems for feature engineering from transactional data, implement models for real-time inference in lending platforms, and establish rigorous validation frameworks to ensure regulatory compliance and model fairness. A significant part of the role involves collaborating with cross-functional teams including risk analysts, data scientists, product managers, and software engineers to integrate ML solutions into production financial systems. Mentoring junior engineers and contributing to strategic technical roadmaps are also standard expectations for senior-level positions. The typical skill set required for these jobs is both deep and broad. Expertise in Python and ML frameworks like PyTorch, TensorFlow, or Scikit-learn is fundamental. A strong foundation in statistical modeling, probability, and experience with large-scale data processing tools is essential. Given the domain, knowledge of financial concepts, regulatory environments (like fair lending practices), and time-series analysis is highly valuable. On the engineering side, proficiency in building scalable, low-latency serving infrastructure, implementing comprehensive MLOps practices, and automating CI/CD pipelines for models is crucial. Experience with cloud platforms and distributed computing is often required to handle vast datasets. For roles focused on innovation, familiarity with advanced techniques like gradient boosting, deep learning for unstructured data, and potentially Generative AI for document processing or customer interaction analytics is increasingly common. Senior machine learning engineer jobs in credit demand professionals who are not only technical experts but also possess strong product sense to align complex models with business objectives like risk reduction, operational efficiency, and improved customer experience. Discover your next career challenge by exploring senior machine learning engineer jobs in the dynamic and impactful field of credit.

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