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Vice President, Product Manager - Asset Management Client Service - Service Assist

Job in New York, New York County, New York, 10261, USA
Listing for: JPMorgan Chase & Co.
Full Time position
Listed on 2026-07-26
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software), AI Business & Operations, AI Evaluation, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 120000 - 170000 USD Yearly USD 120000.00 170000.00 YEAR
Job Description & How to Apply Below
Position: Vice President, Product Manager - Asset Management Client Service Experience - Service Assist
Location: New York

As a Service Assist Product Manager, you will bring strong product discipline and a data-driven, AI-first mindset—spanning generative AI, machine learning, and natural language processing (NLP)—to lead strategy and end-to-end execution across business and technology teams, mobilizing partners to deliver measurable client, operational, and risk outcomes.

Job Responsibilities:

  • Define and maintain the Service Assist product vision, strategy, and roadmap, aligned to business priorities, client experience goals, and the firm’s AI ambitions.

  • Champion an AI-first approach, identifying and prioritizing high-value use cases for generative AI, machine learning, and intelligent automation—such as intelligent intake and routing, conversational AI and virtual assistants, response generation, summarization, and retrieval-augmented generation (RAG).

  • Lead transformation and change management, driving user adoption and operational readiness across servicing teams.

  • Partner with cross-functional triad teams—Engineering, Design, and Data Science, alongside Service operations and Risk & Controls—to ensure alignment, clear ownership, and successful delivery.

  • Run an agile governance and delivery cadence, and own and prioritize the product backlog, balancing scope, timelines, dependencies, and risk.

  • Define OKRs and success metrics—response time, accuracy and quality, automation and deflection rates, risk reduction, and client satisfaction (CSAT)—and use experimentation and A/B testing to drive continuous improvement.

  • Establish AI evaluation frameworks, guardrails, and monitoring—covering model accuracy, hallucination and bias mitigation, explainability, and responsible-AI compliance.

  • Translate complex AI, data, and technology concepts into clear narratives for senior and non-technical audiences, proactively managing stakeholders and driving timely decisions and escalations.



Required Qualifications , Capabilities, and

Skills:

  • Proven, hands‑on product management experience with agile practices—roadmaps, backlogs, prioritization, and iterative delivery.

  • Strong conceptual command of AI/ML, generative AI, and large language models (LLMs)—including prompt engineering, retrieval-augmented generation (RAG), and agentic AI—and the ability to translate them into product features such as automation, summarization, intent classification, and intelligent routing.

  • High data literacy, with the ability to interpret data, define metrics, and draw sound conclusions across quality, cycle‑time, and adoption measures.

  • Ability to use AI‑assisted and no‑code/low‑code tooling to independently produce data‑science‑style outputs—queries, analyses, experiments, and prototypes—without deep hands‑on coding.

  • Working knowledge of responsible AI, model evaluation, and AI governance, partnering with Data Science and Engineering on model performance and safe deployment.

  • Excellent written and verbal communication, documentation, analytical thinking, and sound judgment.

  • Proven ability to influence and lead through others, manage cross‑functional teams, and navigate conflict.



Preferred Qualifications , Capabilities, and

Skills:

  • Asset Management or financial services experience, and/or experience delivering solutions for a Client Service organization.

  • Experience delivering AI/ML, generative AI, or conversational AI products—ideally in client servicing, contact center, or customer inquiry contexts.

  • Familiarity with the modern AI stack—LLM platforms, vector databases, RAG pipelines, MLOps/LLMOps, and AI evaluation and observability tooling.

  • Experience partnering with UX research and design to improve client journeys; familiarity with knowledge management or client lifecycle operations.

  • AI‑driven mindset and a passion for using AI copilots to raise product decisioning, documentation quality, and delivery velocity.

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