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채용JPMorgan Chase

Applied AI ML Lead - Global Banking

JPMorgan Chase

Applied AI ML Lead - Global Banking

JPMorgan Chase

Bengaluru, Karnataka, India, IN

·

On-site

·

Full-time

·

2w ago

Building and scaling secure agentic AI platforms and microservices, embedding AI into business UI workflows.

As an Applied AI ML lead in Global Banking Technology team , you will be a hands-on full-stack engineer and technical leader responsible for building and scaling agentic AI capabilities—including agents, MCP integrations, and orchestration services—and delivering AI-powered business UI use cases that embed these capabilities into real workflows. In parallel, you will partner closely with platform engineering teams to design and implement foundational platform services such as UI shell components, resolver servers, gateway services, and OPA-based policy enforcement.

You will own solutions end-to-end—from architecture and implementation through CI/CD, production readiness, and operational stability—while setting a high bar for engineering quality, security, resiliency, and developer experience.

Job Responsibilities

  • Build and productionize agentic AI solutions agents, orchestrators, tool/function integrations, workflow/state management, and guardrails
  • Implement MCP-style integrations to connect agents to enterprise tools/services with strong controls, auditability, and observability
  • Deliver AI-enabled business UI experiences in partnership with product and UX, ensure usability, performance, and accessibility
  • Design and develop Python and Java services (microservices and shared libraries) with strong API contracts and domain-driven design where applicable
  • Partner with platform engineering to build/enhance core capabilities: Shell/component frameworks and reusable UI building blocks ;Resolver servers and orchestration backends ;Gateway services for routing, resiliency, and authN/authZ integration ;OPA-based policy enforcement and policy-as-code enablement
  • Own end-to-end delivery, requirements, architecture, implementation, testing, CI/CD, deployment, monitoring, and production support
  • Establish and uphold engineering standards for code quality, automated testing, performance tuning, observability (logs/metrics/traces), and resiliency
  • Collaborate with security, risk, and controls partners to ensure solutions meet governance and compliance expectations for AI-enabled systems
  • Produce reference architectures, templates, and paved paths to accelerate adoption across teams

Required Qualifications, Capabilities, and Skills

  • 10+ years of hands-on software engineering experience delivering production-grade systems
  • Strong proficiency in Python and Java, including clean architecture, design patterns, and performance-minded development
  • Proven experience building distributed systems/microservices, including REST/gRPC API design and service decomposition
  • Hands-on experience with orchestration/workflow patterns (state machines, job runners, event-driven services, or equivalent)
  • Strong grounding in secure engineering practices authentication/authorization, secrets handling, least privilege, secure coding
  • Experience with policy enforcement/authorization patterns, familiarity with OPA (or similar policy-as-code frameworks)
  • Hands-on experience with Elasticsearch for building search, indexing, and analytics capabilities at scale
  • Experience designing and implementing Spring Batch jobs for large-scale data processing and ETL workflows
  • Solid SDLC discipline, code reviews, unit/integration testing, CI/CD, release hygiene, and production support ownership
  • Strong communication and collaboration skills across product, UX, and multiple engineering teams

Preferred Qualifications, Capabilities, and Skills

  • Experience building LLM/GenAI applications, including prompt/tool design, RAG patterns, evaluation approaches, and safety controls
  • Familiarity with Model Context Protocol (MCP) concepts and building tool ecosystems for agent platforms
  • Experience with React/TypeScript and enterprise UI shell/component frameworks
  • Experience with Kafka/event streaming and asynchronous, event-driven architectures
  • Cloud-native experience(AWS) with containers/Kubernetes and operational excellence (monitoring, alerting, incident response)
  • Background delivering platforms in regulated environments with strong risk and control requirements

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총 지원 클릭 수

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모의 지원자 수

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스크랩

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JPMorgan Chase 소개

JPMorgan Chase

JPMorgan Chase & Co. is an American multinational banking institution headquartered in New York City and incorporated in Delaware. It is the largest bank in the United States, and the world's largest bank by market capitalization as of 2025.

300,000+

직원 수

New York City

본사 위치

$500B

기업 가치

리뷰

3.8

10개 리뷰

워라밸

3.2

보상

4.1

문화

3.8

커리어

3.0

경영진

2.5

65%

친구에게 추천

장점

Good benefits and compensation

Supportive and collaborative environment

Flexible work arrangements

단점

Long hours and heavy workload

Management issues and lack of direction

High stress during peak times

연봉 정보

41개 데이터

Mid/L4

Senior/L5

Mid/L4 · Applied AI ML Associate

2개 리포트

$188,500

총 연봉

기본급

$145,000

주식

-

보너스

-

$182,000

$195,000

면접 경험

5개 면접

난이도

3.0

/ 5

소요 기간

14-28주

합격률

40%

경험

긍정 20%

보통 80%

부정 0%

면접 과정

1

Application Review

2

HireVue Video Interview

3

Recruiter Screen

4

Superday/Panel Interview

5

Final Interview

6

Offer

자주 나오는 질문

Behavioral/STAR

Technical Knowledge

Culture Fit

Past Experience

Case Study