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Machine Learning Engineer - Credit Jobs

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Staff Machine Learning Engineer, AI
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Join Sentry's AI/ML team as a Staff Machine Learning Engineer in San Francisco. Develop production-grade agentic systems and models using Python and PyTorch to enhance our core product. Leverage massive datasets to solve real production issues and own major AI initiatives. This role offers compet...
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United States , San Francisco
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210000.00 - 280000.00 USD / Year
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Sentry
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Machine Learning Engineer
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Join a leading team in Abu Dhabi as a Machine Learning Engineer. Design, build, and deploy scalable AI systems from concept to production. Utilize Python, PyTorch/TensorFlow, and MLOps to solve complex, real-world problems. This hands-on role offers high-impact work in a collaborative, fast-paced...
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United Arab Emirates , Abu Dhabi
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Salt
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Software Engineer, Machine Learning
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Join Meta's world-class team as a Software Engineer, Machine Learning in Sunnyvale. Develop scalable ML models and drive product impact for billions of users. Requires 6+ years of experience and expertise in C++/Java. Enjoy competitive bonus, equity, and benefits.
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United States , Sunnyvale
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217000.00 USD / Year
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Meta
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Software Engineer, Machine Learning
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Join Meta as a Software Engineer, Machine Learning in Sunnyvale. Develop scalable ML models and drive product impact on global platforms. Collaborate with cross-functional teams to architect innovative, high-performance systems. Requires a relevant degree and 2+ years of programming or ML experie...
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United States , Sunnyvale
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181000.00 USD / Year
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Meta
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Software Engineer (Technical Leadership) - Machine Learning Specialist
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Lead machine learning initiatives at Meta, tackling massive-scale prediction problems with social data. This senior role in Sunnyvale requires 12+ years of coding and 8+ years in ML/AI, with a strong focus on technical leadership and cross-functional project impact. You will develop scalable clas...
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United States , Sunnyvale
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219000.00 - 301000.00 USD / Year
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Meta
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Intermediate / Senior Machine Learning Engineer
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Join UPS as a Machine Learning Engineer in Chennai. Design, deploy, and scale robust ML models and pipelines using Python, TensorFlow/PyTorch, and cloud platforms like GCP Vertex AI. Drive the full ML lifecycle, enhance MLOps practices, and mentor junior talent in a collaborative environment.
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India , Chennai
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NTT DATA
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Software Engineering, Machine Learning
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Join Meta's world-class team in Singapore as a Machine Learning Engineer. Develop and scale ML models using Python, C++, and Java to enhance global connectivity products. Collaborate cross-functionally to solve complex problems and drive significant business impact. Apply your expertise in recomm...
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Singapore
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Meta
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Staff Full Stack Software Engineer, Machine Learning Platform
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Join Cloudera's AI Team in Budapest as a Staff Full Stack Engineer. Design and build the next-generation AI/ML platform using Node.js, TypeScript, React, and modern cloud tech. This role requires 4+ years' experience and offers flexible WFH, wellness programs, and career development.
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Hungary , Budapest
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Cloudera
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Machine Learning Engineer - Credit Jobs: A Comprehensive Career Overview Machine Learning Engineers (MLEs) specializing in credit represent a critical fusion of advanced data science, software engineering, and deep financial domain expertise. Professionals in these roles are the architects of intelligent systems that power modern credit decisioning, risk assessment, fraud detection, and customer personalization within financial institutions, fintech companies, and credit bureaus. Pursuing Machine Learning Engineer jobs in the credit sector means building the core algorithmic engines that determine creditworthiness, optimize lending portfolios, and ensure regulatory compliance at scale. The typical day-to-day responsibilities of a Machine Learning Engineer in credit revolve around the end-to-end lifecycle of predictive models. This begins with translating complex business problems—such as predicting default probability or identifying synthetic fraud—into concrete, machine-solvable tasks. They are responsible for data acquisition, curation, and the creation of robust feature pipelines from vast and often sensitive financial datasets. A significant portion of their work involves designing, training, validating, and deploying machine learning models. These can range from traditional gradient-boosted trees for scorecard development to sophisticated deep learning and Generative AI models for analyzing unconventional data or generating financial insights. Beyond model building, a hallmark of the profession is the emphasis on production-grade engineering. MLEs don't just prototype; they build scalable, reliable, and monitorable ML systems. This involves writing clean, maintainable code in languages like Python, leveraging big data tools like Spark, and implementing robust MLOps practices. They design and maintain model serving infrastructure, automate retraining pipelines, and establish comprehensive monitoring for model performance, data drift, and concept drift to ensure decisions remain fair and accurate over time. Collaboration is key, as they frequently partner with Data Scientists, Software Engineers, Risk Analysts, and Product Managers to integrate models into consumer-facing applications and internal tools. Typical skills and requirements for these high-impact jobs include a strong foundation in computer science and quantitative disciplines (e.g., Computer Science, Statistics, Mathematics, Operations Research). Proficiency in machine learning frameworks (PyTorch, TensorFlow, scikit-learn) and software engineering best practices is essential. A solid understanding of credit risk principles, financial regulations (like fair lending laws), and the unique challenges of financial data (imbalanced datasets, temporal dependencies) is a major differentiator. As the field evolves, experience with cloud platforms (AWS, GCP, Azure), containerization (Docker, Kubernetes), and increasingly, frameworks for large language models (LLMs) and retrieval-augmented generation (RAG) for document analysis is highly valued. Ultimately, Machine Learning Engineer jobs in credit offer a unique opportunity to apply cutting-edge AI to solve problems with profound real-world consequences, directly impacting financial inclusion, institutional stability, and economic efficiency. It is a career path demanding technical rigor, ethical consideration, and a passion for building systems that are not only intelligent but also transparent, equitable, and robust.

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