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Machine Learning Architect GenAI

Job in San Jose, Santa Clara County, California, 95199, USA
Listing for: Adobe
Full Time position
Listed on 2026-02-21
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer, Data Scientist
Salary/Wage Range or Industry Benchmark: 80000 - 100000 USD Yearly USD 80000.00 100000.00 YEAR
Job Description & How to Apply Below
Position: Machine Learning Architect GenAI Experiences

Our Company

Changing the world through digital experiences is what Adobe’s all about. We give everyone—from emerging artists to global brands—everything they need to design and deliver exceptional digital experiences! We’re passionate about empowering people to create beautiful and powerful images, videos, and apps, and transform how companies interact with customers across every screen.

We’re on a mission to hire the very best and are committed to creating exceptional employee experiences where everyone is respected and has access to equal opportunity. We realize that new ideas can come from everywhere in the organization, and we know the next big idea could be yours!

The Opportunity

Adobe is seeking a Senior Machine Learning Architect to help define and deliver the next generation of AI-powered user experiences across Adobe Experience Cloud. This role sits at the intersection of machine learning, user experience, and large-scale UI systems, with responsibility for shaping how intelligence is delivered to users—not just which models are used.

As a senior member of the GenAI Experiences team
, you will architect and evolve the ML systems that power AI‑assisted experiences, including AI Assistant and related experience surfaces. This includes combining modern GenAI approaches with classical machine learning techniques to deliver responsive, reliable, and trustworthy user experiences.

This role is ideal for senior ML engineers who enjoy end‑to‑end ownership: from user‑centric data and modeling, to inference pipelines, to how intelligence is grounded in real production UIs and evaluated through user behavior.

What You’ll Do
  • Build and ship ML‑driven capabilities that power AI‑assisted user experiences across Adobe Experience Cloud, with a strong emphasis on usability, trust, and proactivity.
  • Design and architect ML systems that blend multiple approaches—including LLMs, classical ML /NL/IR, and heuristics—to solve complex user‑facing problems at scale.
  • Work deeply with user‑centric data such as page and UI structure, semantics, and state, interaction logs, UI events, behavioral signals, and human feedback loops to inform modeling, evaluation, and iteration.
  • Apply and evolve non‑GenAI techniques where appropriate, including recommendation systems, clustering, ranking, NLP pipelines, heterogeneous graph traversal, and edge‑based or on‑device models.
  • Develop and evolve agentic and reasoning‑based systems that integrate retrieval, context, workflows, and decisioning in service of grounded, high‑quality user experiences.
  • Partner closely with UI engineers, designers, product managers, and researchers to ensure ML capabilities are expressed through intuitive, coherent interaction patterns.
  • Define and own evaluation frameworks that incorporate UX‑relevant signals such as relevance, latency, consistency, visual quality, and human feedback—not just offline accuracy metrics.
  • Drive system reliability, scalability, and performance for user‑facing ML systems, including real‑time and edge inference, experimentation, and monitoring under strict latency, privacy, and compute constraints.
  • Serve as a senior technical leader and mentor, helping shape ML direction and standards across experience‑focused teams.
What You Need to Succeed
  • Bachelor’s degree with 10+ years of industry experience, or Master’s/PhD with equivalent experience, building and shipping ML systems at scale.
  • Strong background in applied machine learning, spanning both modern GenAI techniques and classical ML approaches.
  • Demonstrated experience architecting ML systems end‑to‑end, from data ingestion and modeling to production deployment and iteration.
  • Proven success delivering AI/ML solutions that directly impact user experience, engagement, or productivity.
  • Proficiency in Python and experience with ML frameworks such as PyTorch, Tensor Flow, Hugging Face, or equivalent.
  • Hands‑on experience with user‑centric data pipelines, experimentation frameworks, and production evaluation.
  • Experience with LLMs, retrieval‑augmented generation, prompt and context engineering, and agent creation/agentic systems.
  • Strong judgment in selecting the right AI/ML approach for a given problem,…
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