Madison-Davis, LLC
New York City Metropolitan Area • Posted Yesterday
Onsite Full Time Staffing and Recruiting

A large financial institution is seeking a senior Data Science and Analytics Engineer to help expand and operationalize enterprise AI and machine-learning capabilities.


This is a highly hands-on position for someone who combines deep technical expertise with the ability to provide direction, establish standards, and communicate effectively with business and technology leadership.


You will build production-grade AI and analytics solutions while helping mature the organization’s engineering, MLOps, governance, and deployment practices.


Responsibilities


  • Design, develop, and deploy enterprise machine-learning, AI, and advanced-analytics solutions.
  • Own analytics delivery from problem definition and feature engineering through model development, deployment, monitoring, and adoption.
  • Build scalable ML pipelines using Python, Databricks, Spark, and cloud-native technologies.
  • Integrate models into enterprise applications and operational workflows.
  • Establish MLOps standards for deployment, CI/CD, experiment tracking, model monitoring, and lifecycle management.
  • Support model explainability, validation, governance, and auditability.
  • Partner with business, engineering, risk, compliance, data, and operations teams.
  • Provide technical leadership while remaining directly involved in development and implementation.


Role Requirements


  • 10+ years of experience across data science, AI/ML engineering, advanced analytics, quantitative modeling, or related areas.
  • Deep hands-on Python and SQL experience.
  • Strong machine-learning, predictive-modeling, and statistical-analytics background.
  • Demonstrated experience delivering ML or AI solutions into production.
  • Databricks, Spark, and cloud-analytics experience.
  • Experience with modern ML frameworks and model-lifecycle tooling.
  • Practical MLOps experience including deployment, CI/CD, monitoring, and experiment tracking.
  • Experience within financial services or another regulated enterprise environment.
  • Strong communication and stakeholder-management skills.
  • Ability to provide technical leadership without moving away from hands-on execution.


Nice to Have


  • Banking, lending, payments, fraud, AML, risk, or regulatory-analytics experience.
  • Production GenAI, LLM, NLP, or intelligent-automation experience.
  • Azure ML and MLflow.
  • Model-risk or AI-governance experience.
  • Feature stores, vector retrieval, RAG, or real-time inference architectures.

AI Engineer in New York City Metropolitan Area at Madison-Davis, LLC

This position is listed as full time and onsite. It was posted yesterday.

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