Why This Role Stands Out
As an AI Practice Lead in Financial Services and Insurance at EPAM Systems, you will shape the future of AI solutions, driving innovation and leading multidisciplinary teams in a hybrid environment. This role offers exceptional career growth and skill development within a globally recognized tech leader, perfect for experienced leaders ready to make a significant impact. You are encouraged to apply and elevate your career in this dynamic field.
Quick Overview
Job Description
We are seeking an AI leader to drive innovation and delivery across our Financial Services and Insurance portfolio. You'll oversee the full lifecycle of AI solutions, from ideation to production, shaping strategy, leading multidisciplinary teams, and building new capabilities in a fast-evolving market. EPAM is where tech talent thrives-building groundbreaking solutions, advancing your skills through world-class learning platforms, and working alongside a global community of problem-solvers to make the future real.
Req# Responsibilities Work with clients and internal teams to shape the AI, machine learning, and agentic business and technology vision and go-to-market offerings Manage end-to-end data science, artificial intelligence, and agentic projects and programs Lead multidisciplinary workshops and design sessions with customers Develop high-quality proposals in collaboration with subject matter experts and consultants Contribute to the evolution of data science, artificial intelligence, and agentic offerings Grow team capacity and capability, build new competencies, mentor team members, and champion transformation with stakeholders Requirements 10+ years of experience as a data science lead, machine learning engineering lead, or similar roles in banking, investment, underwriting, actuarial, or consulting for financial services, insurance, or reinsurance 5+ years in a leadership role with team management responsibilities Strong communication skills with the ability to explain complex concepts to diverse audiences Hands-on experience in at least one domain: computer vision, natural language processing, recommender systems, or time series analytics Machine learning engineering and production delivery experience, including ML/LLMOps and cloud platforms Knowledge of technologies such as Databricks, Snowflake, or agentic orchestration tools (LangChain, Omnigent, Semantic Kernel) Working knowledge of at least one programming language, ideally Python Understanding of data science engineering excellence and the modern software development lifecycle for artificial intelligence products Consulting experience in a professional services environment Nice to have Current AI leadership experience in a financial services or insurance organization Referenceable work such as papers, open-source contributions, or conference talks in the AI or machine learning space Current cloud certifications for Amazon Web Services, Google Cloud Platform, Microsoft Azure, or Databricks Experience with regulatory processes and standards such as KYC/AML, ISO/IEC, FSB, IFRS, or FINTRAC
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