Full-Time

Lead Prompt Engineer

Research Technology Management

Morgan Stanley

Morgan Stanley

10,001+ employees

Global financial services; wealth management

No salary listed

Mumbai, Maharashtra, India

In Person

Bachelor's

Category
Software Engineering (1)
Required Skills
LLM
Python
Product Management
Financial analysis
Data Governance
Data Analysis

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Requirements
  • At least 5 years of relevant professional experience, preferably within financial services, including investment banking, investment research, asset management, financial technology, financial-data providers or aggregators, or related organizations.
  • Strong understanding of financial markets, financial analysis, and investment research workflows.
  • An academic background in finance, economics, business, computer science, engineering, or a related discipline, with demonstrated finance expertise.
  • Strong hands-on Python capabilities.
  • At least 2–3 years of practical experience with generative artificial intelligence, large language models, prompt engineering, or related artificial intelligence technologies.
  • Demonstrated ability to design, develop, test, and improve prompts and artificial-intelligence-enabled workflows.
  • Understanding of artificial-intelligence and large-language-model evaluation methodologies and the ability to translate evaluation concepts into practical testing frameworks.
  • Demonstrated project and/or product management experience.
  • Experience with data, data analytics, and usage/performance reporting.
  • Ability to translate business requirements into functional and technical requirements.
  • Ability to communicate technical artificial-intelligence concepts to nontechnical audiences in written and verbal form.
  • Strong stakeholder-management and relationship-building capabilities.
  • Ability to operate effectively and independently in the business environment.
  • Demonstrated ability to manage multiple priorities and initiatives in a complex, global organization.
Responsibilities
  • Oversee the development of regional department-wide, sector- or industry-specific, asset-class-specific, and team- or analyst-specific solutions across supported artificial-intelligence tools and platforms.
  • Identify, solicit, collect, and document business problems, ideas, and artificial-intelligence use cases.
  • Translate business needs into clear functional and technical requirements.
  • Assess feasibility, value, risk, scalability, and appropriate implementation approaches.
  • Design and develop artificial-intelligence-enabled solutions, workflows, prompts, and prototypes.
  • Develop and refine prompts and prompting strategies for centrally developed and deployed artificial-intelligence products.
  • Design and execute appropriate testing and evaluation methodologies.
  • Validate solutions for quality, reliability, usability, and compliance with applicable requirements.
  • Coordinate deployment and implementation.
  • Provide or coordinate ongoing production support, maintenance, enhancement, and optimization.
  • Manage the lifecycle of artificial-intelligence assets, including ownership, documentation, versioning, monitoring, review, and retirement where applicable.
  • Promote reusable and scalable solutions where common needs exist, reducing unnecessary duplication of artificial-intelligence assets across Research teams.
  • Build and maintain relationships with Asia-Pacific and Japan Research coverage teams to understand their workflows, priorities, challenges, and artificial-intelligence opportunities.
  • Establish a process for soliciting, documenting, retaining, assessing, and prioritizing artificial-intelligence requirements and use cases surfaced by Research teams globally.
  • Develop and maintain a transparent regional department-wide roadmap for artificial-intelligence enablement initiatives.
  • Execute the agreed roadmap and communicate priorities, dependencies, progress, and changes to stakeholders.
  • Develop a prioritization framework incorporating expected business value, user reach, implementation effort, technical feasibility, risk, strategic alignment, and potential for reuse.
  • Comply with legal, compliance, risk, information-security, and artificial-intelligence governance processes required to introduce new artificial-intelligence assets and capabilities into Global Research.
  • Partner with firmwide modeling, governance, and control teams to ensure compliance with applicable firmwide generative-artificial-intelligence, model, data, and technology requirements.
  • Ensure required evaluations, approvals, controls, and documentation are completed and maintained.
  • Ensure relevant requirements and restrictions are clearly communicated to Research users and stakeholders.
  • Embed governance, control, data-handling, entitlements, and appropriate human-review considerations into the design of artificial-intelligence solutions from inception.
  • Maintain documentation and auditability of artificial-intelligence enablement activities, decisions, evaluations, and approvals.
  • Coordinate closely with firmwide technology teams responsible for artificial-intelligence platforms, infrastructure, and tool rollouts.
  • Partner with technology development leads on the design and development of technology-built and supported artificial-intelligence assets.
  • Work with technology teams to develop tools, utilities, software, and infrastructure required to support the Artificial Intelligence Enablement team’s activities.
  • Collaborate with development teams, data teams, modeling teams, technology support teams, analytics/reporting teams, and other groups engaged in related artificial-intelligence initiatives.
  • Coordinate with similar artificial-intelligence and enablement teams across Morgan Stanley’s Institutional Technology organization to share knowledge, standards, solutions, and best practices.
  • Act as a bridge between Research users and technical teams by translating investment-research requirements into actionable technology requirements and technical capabilities into practical Research applications.
  • Identify opportunities to reuse firmwide technology and artificial-intelligence capabilities before initiating duplicative development.
  • Collect, analyze, and report usage data for Artificial Intelligence Enablement-supported tools, features, solutions, and initiatives.
  • Monitor adoption patterns and identify opportunities to improve utilization and user experience.
  • Use data and user feedback to inform roadmap priorities, training needs, solution enhancements, and tool-selection strategies.

Morgan Stanley is a global financial services firm offering investment banking, securities, wealth management, and investment management services to individuals, families, institutions, and governments. It helps clients raise, manage, and distribute capital through advisory services, asset management, trading, and financing activities, with revenue from advisory fees, asset management fees, trading commissions, and interest income. The company differentiates itself through its large, worldwide platform that provides a full suite of services across markets and client segments, a focus on client needs and long-term relationships, and a strong emphasis on institutional expertise and capital markets capabilities. Its goal is to help clients achieve their financial objectives by delivering tailored financial solutions and maintaining enduring client partnerships.

Company Size

10,001+

Company Stage

IPO

Headquarters

New York City, New York

Founded

1935

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Simplify's Take

What believers are saying

  • July 2026 revenue reached $21.3 billion, with EPS of $3.46 and ROTCE 26.6%.
  • Wealth Management added $148 billion net new assets in Q2 2026, boosting recurring fees.
  • Morgan Stanley is booking more capital-markets wins, including Fortis's September 2026 note offering.

What critics are saying

  • March 2026 layoffs cut 2,500 jobs, signaling continued cost pressure and restructuring.
  • Western Asset settled SEC allegations on June 5, 2026 with a $100 million penalty.
  • Private-equity-linked Liquidity Asset Line complaints in 2026 expose suitability and reputational risk.

What makes Morgan Stanley unique

  • Morgan Stanley hit $10 trillion client assets in July 2026, a rare wealth-management scale.
  • Its July 2026 wealth business posted $8.9 billion revenue and 30.5% pretax margin.
  • The bank combines elite advisory, trading, and wealth platforms across 83,000 employees.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Life Insurance

Disability Insurance

Health Savings Account/Flexible Spending Account

Unlimited Paid Time Off

Paid Vacation

Paid Sick Leave

Paid Holidays

Hybrid Work Options

401(k) Retirement Plan

401(k) Company Match

Mental Health Support

Wellness Program

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