We are looking for a hands-on research lead to drive our work on reinforcement learning and post-training for agentic AI, and to manage a small team of senior researchers working on related problems in RL, agentic tool-calling, synthetic environment generation, model scaling, and multimodal action models. You will help set direction for how we develop infrastructure, training, runtime and evaluation procedures for interactive agents - tool calling, coding, computer use, and long-horizon tasks.
This role sits inside a research organization pursuing first-principles approaches to core AI problems: generative foundation models across modalities (text, images, graphs, scientific and engineering data), vision-language modeling and implicit world modeling, self-supervised learning, and search and evolutionary methods for optimizing both agents and the environments they learn in. A distinctive part of our agenda is designing methods that fit Apples deployment reality - on-device and hybrid (device plus private cloud) execution, co-designed with current and future hardware - and that take advantage of what this ecosystem uniquely enables, such as deeply personalized, long-context agentic experiences. We aim for both field-changing research and direct impact on Apple products and internal engineering processes.
MLR is a research group first. Management here is about spreading the load of running a team, not stepping away from the work - everyone, including leads, stays hands-on. We support continued engagement with the academic community: publishing, conference service, student collaboration, and internships.
7-10+ years of research experience beyond PhD in industry or as an academic research lead
Strong track record in RL and/or post-training of large models, demonstrated through publications, open-source contributions, or shipped systems
Leadership experience: setting and defending a research direction over multiple years, and directing others work - through direct reports, PhD students, postdocs, or sustained project teams. Formal management experience is welcome but not required
Experience owning ML infrastructure, frameworks and codebases, including open-source research frameworks or environment suites others build on
Strong engineering skills; comfortable working hands-on in large training codebasesExperience taking research from idea to product or production impact
Familiarity with efficiency-aware modeling: small models, mixture-of-experts, quantization, distillation, inference-cost constraints, or hardware-aware method design
Interest or background in open-endedness, evolutionary computation, curriculum or environment design, multi-agent systems, or self-improving systems
Principled or theoretical grounding in RL - representation, exploration, or optimization views of policy learning - alongside strong empirical work
Breadth across core machine learning - generative models, self-supervised learning, pre-training - and perspective on the fields longer arcs, not only its most recent methods
Experience growing other researchers, and managing researchers and engineers with heterogeneous specialties and synthesizing their work toward a common goal
Experience owning a large RL or post-training codebase
| Location | Cupertino, CA |
| Industry | Computer/IT Services |
| Company Size | 10,000 employees or more |
| Year Founded | 1976 |
| Website | https://www.apple.com/jobs |
We’re a diverse collection of thinkers and doers, continually reimagining what’s possible to help us all do what we love in new ways. The people who work here have reinvented entire industries with the Mac, iPhone, iPad, and Apple Watch, as well as with services, including iTunes, the App Store, Apple Music, and Apple Pay. And the same passion for innovation that goes into our products also applies to our practices — strengthening our commitment to leave the world better than we found it.
There’s a place here for every kind of brilliant. Everyone here is an innovator, or an innovator-to-be, no matter what your team or your role. So bring your passion, courage, and original thinking and get ready to share it, because every new product, service, or feature we invent is the result of people working together to make each others’ ideas stronger. Innovation at this level depends on people who represent the variety of the human experience and inspire us with their own fresh perspectives. Together, we’ll do amazing work that can make a difference in people’s lives. Including your own. Learn more about working at Apple.
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