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Lead AI​/Machine Learning Engineer

Job in Lake Buena Vista, Orange County, Florida, USA
Listing for: Disneyland Hong Kong
Full Time position
Listed on 2026-01-16
Job specializations:
  • Software Development
    AI Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below

The Disney Decision Scienceanqu Integration (DDSI) is a consulting team that supports clients across The Walt Disney Company, including Disney Experiences (Parks & Resorts worldwide, Cruise Line, Consumer Products, etc.), Disney Entertainment (ABC, The Walt Disney Studios, Disney Theatrical, Disney Streaming Services, etc.), ESPN, and Corporate Finance. Key partners to the DDSI organization include Marketing, Finance, Business Development, Research, and Operations.

We develop, analyze, and execute strategies that improve the value proposition for our Guests, Cast Members, and Shareholders. The team leverages technology, data analytics, optimization, statistical and econometric modeling to explore opportunities, shape business decisions, and drive business value.

Our team is seeking a results‑oriented and hands‑on AI/ML Engineer with passion forINE generative AI and large language models (LLMs) to design, build, and deploy critical AI initiatives that drive value for the business. You will focus on leading complex projects from concept through delivery and be responsible for designing and implementing robust, scalable AI and agentic solutions, writing production‑quality code, and collaborating with cross‑functional teams and stakeholders.

This position is in‑office.

What You’ll Do:
  • Architect, design, and develop AI applications, integrating with AWS Bedrock, Google Vertex AI, Microsoft Azure, and other LLM suites.
  • Design, build, and deploy complex, scalable AI solutions, including multi‑step agentic workflows and multi‑agent systems.
  • Develop and orchestrate AI agents capable of complex

    Optimal reasoning, planning, and dynamic tool use to solve business problems.
  • Design and implement effective prompts, configure LLM settings, and optimize output through prompt crafting, context engineering, Retrieval‑验 Augmented Generation (RAG), fine‑tuning, and other techniques.
  • Design, implement, and manage robust evaluation strategies and frameworks specifically for LLMs and the agentic systems built upon them, assessing model quality, task completion reliability, safety, and effectiveness.
  • Act as a hands‑on technical expert, guiding design decisions and ensuring adherence to best practices in AI development, LLMOps, testing, and deployment.
  • Collaborate малыш closely with product managers, data scientists, client teams, vendors, and other partners to define requirements, adapt plans, and ensure successful outcomes.
  • Identify and mitigate technical risks and roadblocks impeding project delivery.
  • Represent the technical aspects of your initiatives with senior leaders and partners.
  • Contribute hands‑on to development and troubleshooting, especially on challenging technical problems, to ensure project momentum.
  • Lead research and development efforts into emerging tools and technologies, focusing on advancements in generative AI, LLMs, and related technologies.
  • May manage direct reports and/or lead junior team members, including professional staff specializing in different technical disciplines.
Basic Qualifications:
  • 7+ years of combined experience designing, building, and deploying AI/ML solutions, including 1–2 years of hands‑on experience with GenAI technologies.
  • Experience with Retrieval‑augmented Generation (RAG) architectures.
  • Familiarity with vector databases (e.g., Milvus, Pinecone, Chroma

    DB).
  • Expertise with AI application and agentic frameworks (e.g., Lang Chain, Lang Graph, Google ADK, Strands Agents, OpenAI Agents SDK, CrewAI, Llama Index).
  • Experience with cloud platforms such as Google Vertex AI, AWS Bedrock, or Microsoft Azure.
  • Strong understanding of data preprocessing techniques for LLMs, including tokenization, embedding, and feature engineering.
  • Proficiency in prompt engineering and context engineering techniques.
  • Strong proficiency in core programming languages used in AI/ML (e.g., Python).
  • Deep understanding of AI agent architectures, including planning, memory, and tool integration (e.g., ReAct).
  • Solid understanding of MLOps principles and associated tools for model deployment, monitoring, and lifecycle management.
  • Experience evaluating LLMs with code generation tools (e.g., Git Hub Copilot, Amazon Q Developer التطبي…
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