Generative AI & Machine Learning Engineer

Posted Yesterday
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New York, NY, USA
In-Office
155K-215K Annually
Expert/Leader
Fintech • Financial Services
The Role
Lead end-to-end design, development, and delivery of enterprise Generative AI and ML solutions. Architect scalable LLM, RAG, and agent-based systems, drive technical decisions, implement production-ready MLOps/CI-CD, and mentor engineers. Collaborate with product and business stakeholders, ensure monitoring, security, and operational support, and evaluate emerging AI technologies to improve delivery.
Summary Generated by Built In

In the Technology division, we leverage innovation to build the connections and capabilities that power our Firm, enabling our clients and colleagues to redefine markets and shape the future of our communities. This is a Generative AI & Machine Learning Engineering position at the Vice President level, which is part of the job family responsible for developing and maintaining software solutions that support business needs.

Morgan Stanley is an industry leader in financial services, known for mobilizing capital to help governments, corporations, institutions, and individuals around the world achieve their financial goals.

Interested in joining a team that’s eager to create, innovate and make an impact on the world? Read on.

Technology works as a strategic partner with Morgan Stanley business units and the world's leading technology companies to redefine how we do business in ever more global, complex, and dynamic financial markets. Morgan Stanley's sizeable investment in technology results in quantitative trading systems, cutting-edge modeling and simulation software, comprehensive risk and security systems, and robust client-relationship capabilities, plus the worldwide infrastructure that forms the backbone of these systems and tools. Our insights, our applications and infrastructure give a competitive edge to clients' businesses—and to our own.

The Team:
The Investment Banking and Global Capital Markets Technology is a globally distributed but close-knit team based in NY, LN, Mumbai, Bengaluru and Pune. We are a highly innovative team that works in small groups that learn, grow, and succeed together. We follow Agile development practices to deliver high quality solutions that delight our customers.  As a member of the team, you will interact with others who are genuine and want you to succeed. Your talent, experience, and voice are valued and will make a difference.

We are seeking an experienced and hands-on engineering leader specializing in Generative AI (GenAI), Large Language Models (LLMs), intelligent agents, and Machine Learning. This role is ideal for a technical leader who enjoys solving complex engineering problems, working closely with business and technology partners, and leading the end-to-end delivery of AI-powered products in a fast-paced investment banking environment.

What you’ll do in the role:

  • Lead the end-to-end design, development, and delivery of enterprise AI and machine learning solutions from concept through production deployment. 

  • Architect scalable, secure, and resilient AI platforms leveraging LLMs, Retrieval-Augmented Generation (RAG), intelligent agents, and modern machine learning techniques. 

  • Provide hands-on technical leadership during solution design, implementation, code reviews, and production support. 

  • Drive technical decision-making to ensure solutions are scalable, maintainable, and aligned with enterprise engineering standards. 

  • Collaborate closely with product owners, business stakeholders, architects, and engineering teams to translate business requirements into high-quality technical solutions. 

  • Lead technical planning, estimation, sprint execution, and delivery across multiple concurrent initiatives. 

  • Ensure AI solutions are production-ready with appropriate monitoring, observability, testing, security, and operational support. 

  • Drive engineering best practices including CI/CD, automated testing, code quality, infrastructure automation, and MLOps. 

  • Evaluate emerging AI technologies and recommend practical adoption where they improve delivery or engineering productivity. 

  • Mentor engineers and promote engineering excellence through technical guidance, design reviews, and knowledge sharing.

What you’ll bring to the role:

  • 10+ years of AI/ML and software engineering experience, with a proven track record of designing, developing, and delivering production-grade AI solutions in enterprise environments.

  • Proven experience leading engineering teams and delivering complex technology initiatives in large enterprise environments. 

  • Strong hands-on experience developing production-grade AI and machine learning applications. 

  • Deep experience with Generative AI, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), prompt engineering, and agent-based architectures. 

  • Strong programming skills in Python, with experience in Java or another enterprise programming language preferred. 

  • Experience developing distributed systems using microservices, REST APIs, containerization, and cloud-native architectures. 

  • Experience deploying AI applications using modern MLOps and DevOps practices. 

  • Strong understanding of software engineering fundamentals including system design, scalability, resiliency, testing, and performance optimization. 

  • Excellent communication skills with the ability to lead technical discussions across engineering and business teams. 

  • Experience working in Agile software development environments.

  • Experience with OpenAI, Azure OpenAI, LangChain, LangGraph, or similar AI frameworks. 

  • Experience with vector databases and Retrieval-Augmented Generation (RAG) architectures. 

  • Experience building AI copilots, workflow automation, or agentic AI applications.

Preferred Qualifications

  • Experience within Investment Banking, Capital Markets, or Financial Services technology. 

  • Experience with Kubernetes, Docker, GitHub Actions, Jenkins, MLflow, or similar DevOps and MLOps tooling. 

  • Familiarity with cloud platforms such as Azure, AWS, or Google Cloud


WHAT YOU CAN EXPECT FROM MORGAN STANLEY:

At Morgan Stanley, we raise, manage and allocate capital for our clients – helping them reach their goals. We do it in a way that’s differentiated – and we’ve done that for 90 years.  Our values - putting clients first, doing the right thing, leading with exceptional ideas, committing to diversity and inclusion, and giving back - aren’t just beliefs, they guide the decisions we make every day to do what's best for our clients, communities and more than 80,000 employees in 1,200 offices across 42 countries. At Morgan Stanley, you’ll find an opportunity to work alongside the best and the brightest, in an environment where you are supported and empowered. Our teams are relentless collaborators and creative thinkers, fueled by their diverse backgrounds and experiences. We are proud to support our employees and their families at every point along their work-life journey, offering some of the most attractive and comprehensive employee benefits and perks in the industry. There’s also ample opportunity to move about the business for those who show passion and grit in their work.

To learn more about our offices across the globe, please copy and paste https://www.morganstanley.com/about-us/global-offices​ into your browser.

Expected base pay rates for the role will be between $155,000 and $215,000 per year at the commencement of employment.  However, base pay if hired will be determined on an individualized basis and is only part of the total compensation package, which, depending on the position, may also include commission earnings, incentive compensation, discretionary bonuses, other short and long-term incentive packages, and other Morgan Stanley sponsored benefit programs.

Morgan Stanley is an equal opportunity employer committed to building and maintaining a workforce that is diverse in experience and background.  Our recruiting efforts reflect our strong commitment to a culture of inclusion, where individuals are hired, developed, and advanced based on their skills and talents.

Our workforce reflects a broad cross-section of the global communities in which we operate, bringing a variety of backgrounds, talents, perspectives, and experiences.

For more information, please visit: https://www.morganstanley.com/people-opportunities/eeo.

Skills Required

  • 10+ years of AI/ML and software engineering experience
  • Proven experience leading engineering teams and delivering complex technology initiatives in large enterprise environments
  • Hands-on experience developing production-grade AI and machine learning applications
  • Deep experience with Generative AI, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), prompt engineering, and agent-based architectures
  • Strong programming skills in Python
  • Experience with Java or another enterprise programming language
  • Experience developing distributed systems using microservices, REST APIs, containerization, and cloud-native architectures
  • Experience deploying AI applications using modern MLOps and DevOps practices
  • Experience with OpenAI, Azure OpenAI, LangChain, LangGraph, or similar AI frameworks
  • Experience with vector databases and RAG architectures
  • Experience building AI copilots, workflow automation, or agentic AI applications
  • Strong understanding of software engineering fundamentals including system design, scalability, resiliency, testing, and performance optimization
  • Excellent communication skills
  • Experience working in Agile software development environments
  • Experience within Investment Banking, Capital Markets, or Financial Services technology
  • Experience with Kubernetes, Docker, GitHub Actions, Jenkins, MLflow, or similar DevOps and MLOps tooling
  • Familiarity with cloud platforms such as Azure, AWS, or Google Cloud

Morgan Stanley Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Morgan Stanley and has not been reviewed or approved by Morgan Stanley.

  • Parental & Family Support Family support is extensive, with paid parental leave for all parents, adoption and fertility assistance, backup childcare, and eldercare resources. Feedback suggests these programs meaningfully enhance the overall package and help with retention.
  • Healthcare Strength Health coverage spans medical, dental, vision, mental‑health access, care navigation, and expert second opinions. Convenient primary care access and condition‑specific support reinforce the depth of healthcare coverage.
  • Equity Value & Accessibility Equity compensation and stock ownership are positioned as core motivators that encourage commitment and retention. Feedback suggests education and support are provided to help participants manage equity and related financial benefits.

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The Company
HQ: New York, NY
87,899 Employees

What We Do

Morgan Stanley mobilizes capital to help governments, corporations, institutions and individuals around the world achieve their financial goals. For over 85 years, the firm’s reputation for using innovative thinking to solve complex problems has been well earned and rarely matched. A consistent industry leader throughout decades of dramatic change in modern finance, Morgan Stanley will continue to break new ground in advising, serving and providing new opportunities for its clients. Morgan Stanley is committed to maintaining the first-class service and high standard of excellence that have always defined the firm. At its foundation are five core values — putting clients first, doing the right thing, leading with exceptional ideas, committing to diversity and inclusion, and giving back — that guide its more than 60,000 employees in 1,200 offices across 41 countries.

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