Fraud AI/ML Platform Product Director
Listed on 2026-06-26
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IT/Tech
AI Engineer (Applied/Software)
JOB DESCRIPTION
Ignite your passion for product innovation by leading customer‑centric development, inspiring solutions, and shaping the future with your strategic vision and influence.
As a Product Director in the Consumer & Community Banking Fraud Strategy organization, you will play a pivotal role in defining the future of fraud prevention through advanced machine learning and artificial intelligence. In this senior leadership position, you will own the product vision and multi‑year roadmap for a next‑generation, real‑time fraud intelligence platform that protects millions of customers across digital banking, payments, and financial ecosystems.
Leverage your expertise in transformer‑based ML, graph intelligence, continuous learning, and modern MLOps to build capabilities that detect fraud rings, coordinated attacks, and multi‑step fraud schemes. You will drive innovation in dynamic feature engineering, graph‑based risk detection, sequence modeling, and experimentation frameworks to rapidly deliver governed fraud models that protect customers. Partnering with Fraud Operations, Data Science, Engineering, Product, and Model Risk Management, you will deliver measurable fraud‑loss reduction while preserving an excellent customer experience.
You will also communicate platform strategy, experiment outcomes, and capability roadmaps to senior leaders to inform decisions and continuously improve fraud prevention.
- Oversee the product roadmap, vision, development, execution, risk management, and business growth targets.
- Lead the entire product life cycle through planning, execution, and future development by continuously adapting, developing new products and methodologies, managing risks, and achieving business targets such as cost, features, reusability, and reliability to support growth.
- Coach and mentor the product team on best practices, including solution generation, market research, storyboarding, mind‑mapping, prototyping methods, product adoption strategies, and product delivery, enabling them to effectively deliver on objectives.
- Own product performance and be accountable for investing in enhancements to achieve business objectives.
- Monitor market trends, conduct competitive analysis, and identify opportunities for product differentiation.
- Own the multi‑year platform strategy and roadmap for fraud models, dynamic feature infrastructure (including streaming + feature store), graph intelligence, and MLOps across CCB payment and banking products.
- Lead experimentation and delivery with clear success criteria/lift metrics, converting validated POCs into production capabilities that reduce fraud loss and improve customer experience.
- Productize graph intelligence for fraud rings (entity schema, graph features/embeddings, freshness/latency SLAs, and explainability requirements).
- Establish end‑to‑end model lifecycle standards (model CI/CD, evaluation gates, monitoring, drift detection, automated retraining, and rollback) to ensure safe, reliable deployment.
- Embed governance by design, including explainability, bias/fairness checks, and Model Risk documentation to meet regulatory expectations.
- Build strong partnerships and team capability by developing a high‑performing product org, collaborating cross‑functionally (Product, Engineering, Data Science, Fraud Ops, MRM), staying ahead of industry trends, and translating technical topics for executives.
- 8+ years of experience or equivalent expertise delivering products, projects, or technology applications.
- Extensive knowledge of the product development life cycle, technical design, and data analytics.
- Proven ability to influence the adoption of key product life cycle activities, including discovery, ideation, strategic development, requirements definition, and value management.
- Experience driving change within organizations and managing stakeholders across multiple functions.
- Bachelor's degree.
- 5+ years building or owning ML‑enabled products such as feature platforms, model platforms, or fraud decisioning systems in production environments.
- Deep expertise in fraud, payments risk, trust and safety,…
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