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Machine Learning Engineer - Credit Jobs (Remote work)

124 Job Offers

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Senior Machine Learning Engineer - Fraud (Research Scientist)
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Join Plaid as a Senior Machine Learning Engineer focused on Fraud. Research and prototype cutting-edge methods in graph ML and sequential modeling using one of the largest financial datasets. A PhD or strong research/publication track record and 3+ years of ML experience are required. This Seattl...
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United States , Seattle
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225600.00 - 337200.00 USD / Year
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Plaid
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Senior Machine Learning Engineer - Payments
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Join Plaid's core ML Payments team in Seattle as a Senior Machine Learning Engineer. Design, build, and deploy scalable AI/ML models that shape financial interactions for millions. Leverage NLP, anomaly detection, and time series forecasting in a full lifecycle role from training to production. R...
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United States , Seattle
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225600.00 - 337199.00 USD / Year
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Plaid
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Senior Director of Data Engineering and Machine Learning
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United States of America
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200000.00 - 240000.00 USD / Year
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Modus Create
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Machine Learning Engineer
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United States , Bridgewater
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Not provided
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Bright Vision Technologies
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Senior Machine Learning Engineer, Safety
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United States
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200000.00 - 300000.00 USD / Year
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Patreon
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Staff Machine Learning Engineer
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190000.00 - 250000.00 USD / Year
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Playlab
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Senior Machine Learning Engineer
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United States , New York
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Zencastr
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Senior Machine Learning Engineer, Pricing
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Canada
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141000.00 - 194000.00 CAD / Year
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Lime
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Principal Machine Learning Engineer
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Canada
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192000.00 - 264000.00 CAD / Year
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Principal Machine Learning Engineer
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United States
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240000.00 - 330000.00 USD / Year
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Lime
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Temporary Online Course Developer - Machine Learning Engineering and MLOps
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United States
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Not provided
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Brandeis University
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Senior Machine Learning Engineer
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Canada
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128000.00 - 160000.00 CAD / Year
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FreshBooks
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Senior Machine Learning Engineer
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Canada , Toronto; Halifax; Calgary; Vancouver; Kitchener; Waterloo; Hamilton; Truro
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128000.00 - 160000.00 CAD / Year
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FreshBooks
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Machine Learning Engineering Manager - Asset Intelligence
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Lead a cross-functional AI/ML team in San Francisco, developing predictive maintenance and LLM-driven products. You'll need 4+ years of engineering management and expertise in modern stacks (React, Node, PyTorch). We offer competitive compensation, equity, and a meritocratic culture for smart, hu...
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United States , San Francisco
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MaintainX
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Senior Applied Machine Learning Engineer - Asset Intelligence
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Lead the AI strategy for predictive maintenance and asset intelligence at MaintainX. As a Senior ML Engineer, you'll architect scalable systems, mentor a team, and deploy LLM and time-series models. This San Francisco role combines deep technical expertise with leadership in a high-impact, merito...
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United States , San Francisco
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MaintainX
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Senior Machine Learning Engineer I
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Join Dandy as a Senior Machine Learning Engineer and transform global dental care. Develop cutting-edge 3D generative AI and computer vision models using PyTorch/TensorFlow on massive datasets. Enjoy equity, comprehensive benefits, and shape the future of dental technology with a world-class team.
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181050.00 - 213000.00 USD / Year
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Dandy
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Staff Machine Learning & Computer Vision Engineer
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Join Dandy as a Staff Machine Learning & Computer Vision Engineer to revolutionize dental care. You will build SOTA 2D/3D deep learning models and generative AI on our 3D dental platform. This US-based remote role requires 8-10+ years of Python/PyTorch experience and offers equity, comprehensive ...
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United States
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244200.00 - 296000.00 USD / Year
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Dandy
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Engineering Manager, Machine Learning
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Lead a world-class Machine Learning & Computer Vision team at Dandy, transforming dental care through 3D AI. You will manage a team developing SOTA models for 3D generative AI and computer vision tasks, partnering with product and engineering. This US-based role requires 6+ years of applied ML ex...
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United States
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216750.00 - 255000.00 USD / Year
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Dandy
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Senior Computer Vision / Machine Learning Engineer II
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Join Dandy's world-class Machine Learning & Computer Vision team to revolutionize dental care. As a Senior Engineer, you'll develop SOTA 2D/3D deep learning models using Python and PyTorch. You will enhance our 3D dental platform, working with massive datasets and generative AI. Enjoy top benefit...
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United States
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216750.00 - 255000.00 USD / Year
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Dandy
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Machine Learning Engineer
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Join a lean, high-impact team transforming how executives access expertise. As a Machine Learning Engineer, you'll fine-tune and deploy LLMs to build intelligent, production-ready systems. This fully remote role requires hands-on experience with PyTorch/TensorFlow and end-to-end ML deployment. Sh...
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78.00 USD / Hour
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G2i Inc.
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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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