Principal Data Science Engineer – Financial Crimes
Job in
Hudson, Hillsborough County, New Hampshire, 03051, USA
Listed on 2026-07-20
Listing for:
Jobtailor
Full Time
position Listed on 2026-07-20
Job specializations:
-
Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Job Description & How to Apply Below
Responsibilities
- Collaborate with team members and compliance partners to understand AML typologies and red flags we must detect
- Assist in building detection models and features using SQL, Python, DBT (Data Build Tool), and Snowflake
- Develop detection models using both rules‑based and machine learning algorithms on customer, account, and transaction data
- Apply machine learning and AI techniques to enhance suspicious activity detection by analyzing and identifying appropriate target data
- Monitor and optimize model performance using proper ML Operations tools
- Help drive AI use cases for investigative workflows, including integration in alert management systems, narrative generation, and straight‑through SAR filing
- Champion best practices for CI/CD, robust automated testing, model performance, and production monitoring
- Provide technical leadership, mentoring and training to other team members through code reviews, collaboration, and educational presentations
- Explore new technologies (e.g., anomaly detection, graph analytics, predictive modeling) and determine their applicability to the team’s use cases; orchestrate the adoption of such technologies and trends where appropriate
- Bachelor’s degree in Computer Science or equivalent technical discipline
- 6+ years of experience in software or data engineering, including leading and delivering complex projects
- Strong proficiency in Python or at least one object‑oriented programming language (e.g., Java) with a focus on writing clean, modular, and testable code
- Strong experience querying relational databases (e.g., Oracle, Snowflake) and working with non‑relational databases (e.g., MongoDB)
- Hands‑on experience with machine learning algorithms, including decision trees, neural networks, regression models, clustering, and anomaly detection
- Prior experience working with customer and transactional data in the fraud or AML space
- Understanding blockchain technologies; prior experience in cryptocurrency monitoring is a plus
- Experience with dbt (data build tool) for data transformation and pipeline development
- Prior experience developing solutions using large language models (LLMs), including Retrieval‑Augmented Generation (RAG) for information retrieval and workflow automation
- Certifications such as CAMS (Certified Anti‑Money Laundering Specialist) or CFE (Certified Fraud Examiner) are desirable
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