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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # Data Scientist, Machine Learning - **Company:** AQR Capital Management - **Location:** Greenwich, CT, United States - **Experience:** Experienced - **Salary:** $180,000.0 - $200,000.0 - **Contract:** Permanent contract - **Skills:** Amazon Web Services, Amazon S3, Automation of Tests, Big Data, Profiling, Continuous Integration, Data Cleansing, Information Engineering, Data Governance, Data Integrity, Database Queries, Distributed Systems, Graph Database, Python (Programming Language), PostgreSQL, Machine Learning, Meta-Data Management, NumPy, Unstructured Data, Pytorch, Large Language Models, Git, Pandas, Pytest, Scikit Learn, Api Design - **Published:** September 1, 2026 - **Apply:** https://jobs.localjobnetwork.com/apply/add/88201163/1 ## About the Role * 4+ years of relevant work experience * Strong Python programming skills, including hands-on experience with pandas and NumPy * Strong SQL skills and practical experience with PostgreSQL * Experience working with both structured data and unstructured or textual data * Experience with data quality, validation, monitoring, and profiling * Experience with Git, PyTest, CI/CD, and API development * Ability to reason carefully through edge cases, protect data integrity, and maintain clear documentation of data definitions, transformations, and quality checks * Ability to work independently, communicate clearly with technical and non-technical stakeholders, and manage work across multiple concurrent initiatives * Strong visualization skills Preferred Qualifications: * Experience with scikit-learn, statistics, or advanced modeling techniques * Experience with entity resolution, entity matching, or knowledge graphs * Experience designing prompts and using LLM APIs for batched or large-scale investigation, validation, feature generation, and iterative refinement * Experience building LLM-based featurization workflows, including iterative refinement, validation, and automated testing * Experience with Claude Code, Codex, or AWS Bedrock * Experience with AWS, including S3 and Batch * Experience with distributed computing and large-scale data processing * Exposure to data governance, data cataloging, or related best practices * Strong Math and statistics skills * Experience with Pytorch * Prior experience in financial services, trading, quantitative research, or another research-driven environment Who You Are: * Rigorous, thorough, and highly attentive to detail * Collaborative and able to communicate effectively with researchers and engineering partners * Comfortable working in an evolving role and taking on a broad range of responsibilities ## Description You will serve as a bridge between data engineering and quantitative research. Working directly with researchers, you will also be responsible for ensuring research datasets are accurate, traceable, and ready for machine learning by developing robust data preparation and quality workflows. Your responsibility is to deliver clean, reliable, project-specific datasets and features to the researcher. What You'll Do: * Partner directly with quantitative researchers to understand the needs of a specific machine learning project and collaboratively produce data that best fits the model and project * Transform raw structured and unstructured data into project-specific, research-ready datasets * Perform feature generation and deliver prepared datasets and features to the researcher for modeling and productionization * Resolve tagging, entity-matching, and linkage issues across signals, textual data, and securities * Build data quality assurance, quality monitoring, and profiling workflows through programmatic checks, LLM reviews where appropriate, targeted manual inspection, and feedback-driven iterative refinement * Build point-in-time mappings and knowledge graphs for mergers and acquisitions, bankruptcies, IPOs, and other corporate events * Examine and onboard alternative datasets * Ensure datasets are clean, traceable, and reliable for trading strategies * Work across different researchers and potentially concurrent projects as priorities and the scope of the role evolve * Communicate clearly with researchers and engineering partners ## Related Videos - [Data Science in Retail](https://www.wearedevelopers.com/videos/586-data-science-in-retail) - [pytest: Simple, rapid and fun testing with Python](https://www.wearedevelopers.com/videos/213-pytest-simple-rapid-and-fun-testing-with-python) - [Vectorize all the things! 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