Senior Manager, AI & Machine Learning Engineering
Orlando, FL, USA
- Pay
Multiple pay amounts — pay source
. The hiring range for this position in Orlando, FL is $197,600-$264,900 and in Burbank, CA is $207,400-$278,100 and in Seattle, WA is $217,300-$291,500. The base pay actually offered will take into account internal equity and also may vary depending on the candidate’s geographic region, job-related knowledge, skills, and experience among other factors. A bonus and/or long-term incentive units may be provided as part of the compensation package, in addition to the full range of medical, financial, and/or other benefits, dependent on the level and position offered. Job Posting Segment:
Read the full posting- Work setup
- Unconfirmed
- Employment
Full-time — employment source
Employment Type: Full time Primary City, State, Region, Postal Code:
Read the full posting
What you’ll work on
Full postingOwn technical direction end-to-end.
From the employer’s posting
As the Senior Manager, AI & Machine Learning, you'll be setting architecture, reviewing design decisions, and staying hands-on enough to credibly evaluate trade-offs your team brings you. This role is also expected to be hands-on — stepping in on implementation, unblocking technical issues in real time, and reviewing code with the depth that comes from doing the work yourself, not just overseeing it. Own technical direction end-to-end. Set architecture and technical strategy for the AI/ML and data layers underpinning D-Fi, ensuring every capability — variance analysis, scenario modeling, the natural-language experience — is built on a governed, semantic data foundation rather than one-off pipelines. Be the stakeholder-facing technical lead. Act as the primary engineering liaison to finance business partners and leadership — translating challenging business needs into a scoped, buildable technical roadmap, and representing engineering trade-offs credibly to technical and non-technical partners and leaders.
What you’ll bring
All qualificationsCore experience
- Bachelor's degree in Computer Science, Engineering, or related field; advanced degree a plus but not required given equivalent experience.
Preferred experience
- Experience working alongside or evaluating third-party/consulting-delivered engineering work, with the judgment to assess technical quality and architectural fit quickly
Qualification wording
Bachelor's degree in Computer Science, Engineering, or related field; advanced degree a plus but not required given equivalent experience.
Experience working alongside or evaluating third-party/consulting-delivered engineering work, with the judgment to assess technical quality and architectural fit quickly
Tools in this posting
- Python
- Oracle
- SAP
- Snowflake
Source — Tool mentions in context
- Strong data modeling background, ideally including semantic/governed data layers (not just raw pipelines) - Ability to read, write and review Python code - Working knowledge of modern web/full-stack language or framework sufficient to guide UI-layer architecture decisions
- Background building internal tools for finance organizations is a plus, but not required — genuine curiosity about the domain is. - Exposure to ERP/EPM platforms such as SAP, Oracle EPM, or Cognos, and/or experience integrating custom applications against enterprise system APIs - Experience working alongside or evaluating third-party/consulting-delivered engineering work, with the judgment to assess technical quality and architectural fit quickly
- Production experience with LLM application architecture — RAG pipelines, prompt engineering, and context/retrieval design at scale - Working knowledge of LLM orchestration frameworks (e.g., LangChain, LlamaIndex, or equivalent) and vector databases/retrieval stores (e.g., Pinecone, Weaviate, pgvector, or Snowflake Cortex Search) - Strong data modeling background, ideally including semantic/governed data layers (not just raw pipelines)
Job description
Job Posting Title:
Senior Manager, AI & Machine Learning EngineeringReq ID:
10160195Job Description:
Department Description:
At Disney, we’re storytellers. We make the impossible, possible. The Walt Disney Company (TWDC) is a world-class entertainment and technological leader. Walt’s passion was to continuously envision new ways to move audiences around the world—a passion that remains our touchstone in an enterprise that stretches from theme parks, resorts and a cruise line to sports, news, movies and a variety of other businesses. Uniting each endeavor is a commitment to creating and delivering unforgettable experiences — and we’re constantly looking for new ways to enhance these exciting experiences.
The Enterprise Technology mission is to deliver technology solutions that align to business strategies while enabling enterprise efficiency and promoting cross-company collaborative innovation. Our group drives competitive advantage by enhancing our consumer experiences, enabling business growth, and advancing operational excellence.
Team Description:
We are the Finance Engineering & AI team, and we exist to be Finance's technical partner — for FP&A, Payroll, Controllership, and Tax & Treasury alike — turning business process needs into working software and intelligent automation. Our AI Platform team designs and builds the intelligent automation layer that streamlines and scales finance workflows, while our Business Process Applications team owns and operates the core systems finance relies on every day. Together, we combine deep finance domain expertise with custom engineering to give Finance both a stable operational backbone and a path toward an increasingly automated future.
What You’ll Do:
Disney Financial Insights (D-Fi) is a new platform reimagining how Finance teams and budget owners across Disney interact with financial data — replacing manual pulls, static reports, and email-driven approvals with one AI-powered, orchestrated experience built on top of Disney financial systems.
We're hiring a Senior Manager, AI & Machine Learning, as the founding engineering leader for this AI framework: a hands-on manager and technical lead who will build and run a global engineering team based in Buenos Aires AR, delivering the AI/ML layer, the intelligent data foundation, software workflows/orchestration, and natural-language experience that sits at the center of D-Fi.
This is a build-from-scratch mandate — you'll be shaping team structure, engineering practices, and technical architecture from an early stage (MVP in progress), not inheriting a mature system.
This role is the primary technical point of contact for finance stakeholders & cross-functional partners and is accountable for translating the platform roadmap into a shipped, governed, production-grade system.
As the Senior Manager, AI & Machine Learning, you'll be setting architecture, reviewing design decisions, and staying hands-on enough to credibly evaluate trade-offs your team brings you. This role is also expected to be hands-on — stepping in on implementation, unblocking technical issues in real time, and reviewing code with the depth that comes from doing the work yourself, not just overseeing it.
- Own technical direction end-to-end. Set architecture and technical strategy for the AI/ML and data layers underpinning D-Fi, ensuring every capability — variance analysis, scenario modeling, the natural-language experience — is built on a governed, semantic data foundation rather than one-off pipelines.
- Be the stakeholder-facing technical lead. Act as the primary engineering liaison to finance business partners and leadership — translating challenging business needs into a scoped, buildable technical roadmap, and representing engineering trade-offs credibly to technical and non-technical partners and leaders.
- Own the AI/LLM roadmap. This is the highest-visibility and most sensitive capability on the platform — you'll guide its direction end-to-end to build and maintain trust in AI-generated financial answers.
- Enforce governance by design. Ensure role-based access control (RBAC) is enforced at the data model level — not the application level — across all personas (Finance, Budget Owners, and any future personas), so speed and automation never come at the cost of data governance.
- Set the bar for engineering quality and delivery. Establish practices for code review, testing, model evaluation, and release management across a geo diverse team and multiple disciplines.
- Own the build vs. integrate decisions. Guide when the team builds custom capability versus integrates with existing systems (SAP, Cognos, EPM, Data Marketplace, NetDocs, Coupa, Clarity)
- Champion adoption broadly. Partner with the business finance transformation leads on driving adoption across the enterprise — both finance workers and budget owners.
Required Qualifications & Skills:
- 10+ years of software and/or ML engineering leadership experience, with a strong track record of owning technical direction and architecture for complex systems end-to-end.
- Demonstrated experience architecting and shipping production LLM/AI applications — not just prototypes.
- Production experience with LLM application architecture — RAG pipelines, prompt engineering, and context/retrieval design at scale
- Working knowledge of LLM orchestration frameworks (e.g., LangChain, LlamaIndex, or equivalent) and vector databases/retrieval stores (e.g., Pinecone, Weaviate, pgvector, or Snowflake Cortex Search)
- Strong data modeling background, ideally including semantic/governed data layers (not just raw pipelines)
- Ability to read, write and review Python code
- Working knowledge of modern web/full-stack language or framework sufficient to guide UI-layer architecture decisions
- Familiarity with MLOps practices — model monitoring, retraining pipeline design, containerization, and CI/CD for ML systems
- Experience working across distributed, cross-timezone engineering teams, with the judgment to know what belongs in synchronous vs. asynchronous workflows.
- Comfort operating as the primary technical voice in front of senior business stakeholders — able to translate finance/business problems into technical scope, and technical trade-offs into business language.
Preferred Qualifications:
- Background building internal tools for finance organizations is a plus, but not required — genuine curiosity about the domain is.
- Exposure to ERP/EPM platforms such as SAP, Oracle EPM, or Cognos, and/or experience integrating custom applications against enterprise system APIs
- Experience working alongside or evaluating third-party/consulting-delivered engineering work, with the judgment to assess technical quality and architectural fit quickly
Required Education:
- Bachelor's degree in Computer Science, Engineering, or related field; advanced degree a plus but not required given equivalent experience.
#TECHATDISNEY
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Job Posting Segment:
Services and PlatformsJob Posting Primary Business:
Services and PlatformsPrimary Job Posting Category:
Machine LearningEmployment Type:
Full timePrimary City, State, Region, Postal Code:
Orlando, FL, USAAlternate City, State, Region, Postal Code:
USA - CA - 820 S Flower St, USA - WA - 925 4th AveDate Posted:
2026-09-25Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
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Source & posting history
Source notes
Source excerptsSelected passages from the saved posting. Check the full description for conditions and exceptions.
- Pay
. The hiring range for this position in Orlando, FL is $197,600-$264,900 and in Burbank, CA is $207,400-$278,100 and in Seattle, WA is $217,300-$291,500. The base pay actually offered will take into account internal equity and also may vary depending on the candidate’s geographic region, job-related knowledge, skills, and experience among other factors. A bonus and/or long-term incentive units may be provided as part of the compensation package, in addition to the full range of medical, financial, and/or other benefits, dependent on the level and position offered. Job Posting Segment:
- Location & working pattern
Orlando, FL, USA
Working pattern and location restrictions need checking in the full posting.
- Work authorization
No clear work-authorization passage found. Eligibility is unconfirmed.
- Status in our records
- Active
- First seen by us
- Sep 25, 2026
- Recorded sightings
- 40
- Last seen by us
- Oct 8, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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