Jobs Companies Franklin Templeton AI/ML Lead Engineer

Sobre este puesto de AI/ML Lead Engineer en Franklin Templeton

Franklin Templeton · Híbrido · Stamford, Connecticut, United States of America

O’Shaughnessy Asset Management (OSAM) is part of Franklin Templeton, a forward-thinking asset manager that has built its success through powerful partnerships. We leverage cutting-edge strategies and deep insights to unlock opportunities for long-term wealth creation. Our talented, global teams bring expertise that is both broad and unique.


O’Shaughnessy Asset Management is a research and money management firm based in Stamford, Connecticut operating autonomously and backed with global, enterprise resources. Their approach to managing money is transparent, logical, and completely disciplined, leading to long‐standing relationships with clients. OSAM is a leading provider of Custom Indexing services via its Canvas® platform which offers financial advisors an unprecedented level of control and ease in creating and managing personalized separately managed accounts (SMAs) that target improved after-tax outcomes.




For more firm information, please visit www.osam.com

About the department

Franklin Templeton is seeking an AI/ML Lead Engineer to design and implement agents for financial advisors that simplifies advisor work, leveraging client data and portfolio performance. Ideal candidates will generate insights for individual portfolios and across an advisor book of business, all within a monitored, auditable architecture. You'll be part of Franklin Templeton's AI platform team, where you'll help build the agentic platform and advisor-facing tools that are redefining how our advisors and clients engage with their portfolios. This is a chance to work at the intersection of cutting-edge AI and global asset management, owning foundational architecture and delivering capabilities that reach advisors and clients worldwide.

How you will add value

  • Design and implement production-grade multi-agent systems using the leading agent frameworks and platforms

  • Build agent workflows that integrate context retrieval, reasoning, tool execution, validation, and compliance checks

  • Develop distributed services for agent execution with strong observability, monitoring, and failure handling

  • Establish tools, data agents, and services to enable context ensuring the AI model is grounded in the correct data and knowledge

  • Embed AI agents and chatbots into our client facing platform to surface insights in a natural manner for advisors

  • Establish evaluation frameworks for multi-step reasoning accuracy, grounded-ness, hallucination mitigation, and financial correctness

  • Implement memory management, context handling, and agent state persistence strategies

  • Review interaction issues to continually refine knowledge bases and agent setups

  • Partner with product, design, and engineering teams to translate business requirements into robust agent architecture

  • Optimize systems for latency, cost efficiency, and reliability in production

  • Contribute to infrastructure decisions around model serving, vector databases, caching, and orchestration layers

Key Initiatives this role will support

Advisor-Facing AI

  • Design and implement agents for financial advisors that simplifies advisor work, leveraging client data, portfolio performance, thereby generating insights for individual portfolios as well as across an advisor book of business - all within a monitored, auditable architecture.

Workflow Automation

  • Optimize client servicing, portfolio implementation, and other internal workflows using conversational and autonomous AI agents, this will include establishing a library of focused agents that are effective in their roles.

AI Agent Platform & Infrastructure

  • Architect a scalable multi-agent platform with orchestration engines, memory and state management, dynamic tool invocation, structured output validation, observability, fault tolerance, and automated evaluation — solving reliability, explainability, and regulatory challenges at scale.

What will help you be successful in this role

Required Skills (Must-Have)

  • Production AI/LLM systems: 5+ years of software engineering experience, including 2+ years building and deploying LLM, GenAI, or agent-based systems in production environments.

  • Agent frameworks and tool orchestration: Experience implementing multi-step agent workflows using frameworks such as LangChain, OpenAI function/tool calling, or similar orchestration frameworks.

  • Programming and distributed systems: Expert-level proficiency in Python and experience building distributed services or microservices architectures.

  • Data integration and retrieval: Hands-on experience with vector databases (e.g., Pinecone, FAISS), RAG architectures, and data grounding techniques.

  • Production reliability and monitoring: Experience implementing observability, monitoring, and fault-tolerant systems for high-availability applications.

Preferred Qualifications (Nice-to-Have)

  • Financial services domain: Experience building technology solutions for asset management, wealth management, or portfolio analytics platforms.

  • AI evaluation and model governance: Experience designing evaluation frameworks for LLMs (e.g., hallucination mitigation, groundedness, accuracy testing, or compliance monitoring).

  • Multi-agent systems at scale: Experience designing or deploying multi-agent architectures involving memory, state management, and orchestration layers.

  • Infrastructure and model serving: Experience with model serving frameworks, containerization (Docker/Kubernetes), and cloud platforms (AWS, Azure, GCP).

  • Advanced degree: Master's or PhD in Computer Science, Machine Learning, AI, or a related discipline.

Applicants must be authorized to work for any employer in the U.S. We are unable to sponsor or take over sponsorship of an employment visa at this time.

This is a hybrid role requiring individuals to work out of our Stamford, San Ramon, or San Mateo offices 3 days per week depending on the location of the candidate hired.

Franklin Templeton offers employees a competitive and valuable range of total rewards—monetary and non-monetary — designed to support their well-being and recognize their time, talents, and results. Along with base compensation, employees are eligible for an annual discretionary bonus, a 401(k) plan with a generous match, and recognition rewards. We also offer a comprehensive benefits package, which includes a range of competitive healthcare options, insurance, and disability benefits, employee stock investment program, learning resources, career development programs, reimbursement for certain education expenses, paid time off (vacation / holidays / sick / leave / parental & caregiving leave / bereavement / volunteering / floating holidays) and a motivational wellbeing program. We expect the annual salary for this position to range between $180,000 – $212,000, depending on location and level of relevant experience, plus discretionary bonus.

#LI-Hybrid

Franklin Templeton is an Equal Opportunity Employer. We are committed to providing equal employment opportunities to all applicants and employees, and we evaluate qualified applicants without regard to ancestry, age, color, disability, genetic information, gender, gender identity, or gender expression, marital status, medical condition, military or veteran status, national origin, race, religion, sex, sexual orientation, and any other basis protected by federal, state, or local law, ordinance, or regulation.

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Cómo se compara este salario de Tech Lead

Este puesto paga $196,000/yren línea con el rango típico para los puestos de Tech Lead.

$100,130 la mediana de $163,900 $235,480

Rango típico $131,200–$200,000/yr, a partir de 2,418 ofertas comparables de Tech Lead en JobsRadar (salario anualizado en USD). Ver datos salariales de Tech Lead →

Sobre Franklin Templeton

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