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JPMorgan Chase
JPMorgan Chase

Global financial services firm

Asset Management - NLP/LLM Data Scientist - Associate

职能数据科学
级别应届/初级
地点Central and Western, Hong Kong Island, Hong Kong SAR China
方式现场办公
类型全职
发布1个月前
立即申请

必备技能

Python

Machine Learning

This role provides an exciting opportunity to make a real impact in the asset management industry, work with cutting-edge technologies, and continuously learn and experiment with the latest data science and AI/LLM techniques.

As an Associate in the NLP/LLM Data Scientist Team within Asset Management, you will be at the forefront of enhancing and facilitating various steps in our investment process. You’ll apply cutting-edge data science and machine learning—especially NLP and LLMs—to reengineer processes, improve operational efficiency, and enhance client and investor experiences. You’ll work closely with business stakeholders, technologists, and control partners to design, deliver, and operate solutions in production at scale.

Job Responsibilities

  • Collaborate with internal stakeholders to identify business needs and develop NLP/ML solutions that address client needs and drive transformation.
  • Apply large language models (LLMs), machine learning (ML), and statistical methods to improve decision-making and streamline workflows.
  • Design and build agentic frameworks for LLM-based systems, including multi-step orchestration, tool use, and workflow policies that align with business controls and SLAs.
  • Collect, curate, and document datasets for model training and evaluation with strong data governance.
  • Monitor and improve model performance through feedback and active learning.
  • Collaborate with technology teams to deploy and scale the developed models in production.
  • Deliver written, visual, and oral presentation of modeling results to business and technical stakeholders.
  • Stay up-to-date with the latest research in LLM, ML and data science. Identify and leverage emerging techniques to drive ongoing enhancement.

Required qualifications, capabilities, and skills

  • Advanced degree (MS or PhD) in a quantitative or technical discipline or significant practical experience in industry.
  • Minimum of 3 years of experience in applying NLP, LLM and ML techniques in solving high-impact business problems, such as semantic search, information extraction, question answering, workflow automation.
  • Demonstrated experience designing and building RAG, MCP tools and LLM agent systems (e.g., tool-enabled reasoning, multi-step workflows, retrieval and planning).
  • Proven experience deploying and operating AI/LLM models in production.
  • Advanced Python programming skills with production‑quality coding; familiarity with the latest developments in LLM.
  • Strong knowledge of language models, prompt engineering, model finetuning, and domain adaptation.
  • Ability to communicate complex concepts and results to both technical and business audiences.

Preferred qualifications, capabilities, and skills

  • Prior experience in an Asset Management line of business, especially Operations
  • Familiarity with LLM/AI model guardrails and observability practices (e.g., evaluation frameworks, bias/hallucination checks).
  • CFA designation or current pursuit of the CFA is preferred.

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关于JPMorgan Chase

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+

员工数

New York City

总部位置

$500B

企业估值

评价

10条评价

3.8

10条评价

工作生活平衡

3.5

薪酬

4.0

企业文化

3.8

职业发展

3.2

管理层

2.8

68%

推荐率

优点

Good benefits and compensation

Supportive colleagues and environment

Flexible work arrangements

缺点

Long hours and heavy workload

Management issues and lack of direction

High stress and expectations

薪资范围

44个数据点

Mid/L4

Senior/L5

Mid/L4 · Applied AI ML Associate

2份报告

$188,500

年薪总额

基本工资

$145,000

股票

-

奖金

-

$182,000

$195,000

面试评价

4条评价

难度

3.0

/ 5

时长

14-28周

录用率

50%

体验

正面 25%

中性 75%

负面 0%

面试流程

1

Application Review

2

HR Screen

3

Hiring Manager Interview

4

In-person/Final Interview

5

Offer

常见问题

Behavioral/STAR

Past Experience

Culture Fit

Financial Knowledge

Case Study