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HomeCompaniesIfm UsResearch Scientist - Distributed Machine Learning

Research Scientist - Distributed Machine Learning

Ifm Us · Sunnyvale, CA · On Site · Active · $150,000–$450,000 / year · Lever

Job facts

FieldValue
CompanyIfm Us
TitleResearch Scientist - Distributed Machine Learning
Normalized title-
Department / teamResearch
LocationSunnyvale, CA, United States
Work modelOn Site
Employment typeFull Time
Salary$150,000–$450,000 / year
Statusactive
ATS providerLever
Posted / first seen2025-06-09 / 2026-05-29
Changed / last seen2026-05-29 / 2026-06-06

Related slices

PageWhat it containsOpen
Company jobsActive postings from Ifm Us.Open
Company breakdownsRole, location, ATS, and work model facets for this company.Open
ATS provider jobsActive postings observed through Lever.Open
Provider filtered searchThe same provider as a filtered job collection.Open
City jobsActive postings in Sunnyvale.Open
Work model jobsActive On Site postings.Open
Lifecycle eventsOpen, update, close, and reopen events for this posting.Open
Original postingCanonical source or apply URL captured from the ATS.Open

Linked records

CompanyIfm Us
Source4d111a77-38db-4b88-84a8-24f761a495a9
ATS providerLever

Description

About the Institute of Foundation Models We are a dedicated research lab for building, understanding, using, and risk-managing foundation models. Our mandate is to advance research, nurture the next generation of AI builders, and drive transformative contributions to a knowledge-driven economy. As part of our team, you’ll have the opportunity to work on the core of cutting-edge foundation model training, alongside world-class researchers, data scientists, and engineers, tackling the most fundamental and impactful challenges in AI development. You will participate in the development of groundbreaking AI solutions that have the potential to reshape entire industries. Strategic and innovative problem-solving skills will be instrumental in establishing MBZUAI as a global hub for high-performance computing in deep learning, driving impactful discoveries that inspire the next generation of AI pioneers. Role Overview Build and scale distributed pre-training frameworks ·      Set up DeepSpeed / FSDP / Megatron-LM across multi-node GPU clusters. ·      Create robust launch scripts, resilient checkpoints, and job monitoring (e.g. NCCL/GLOO/GPU). Turn mathematical ideas into fast production code ·      Prototype new optimizers or attention methods (like in PyTorch/NumPy/JAX orothers). ·      Convert them into efficient CUDA/Triton kernels with custom gradients and tests. Boost training efficiency and stability ·      Lead mixed-precision training, push bf16, fp8, etc, into daily runs, track their accuracy-vs-speed gains, and be able to analyze numeric stability ·      Apply kernel fusion, communication tuning, and memory optimization to reach state-of-the-art throughput. Accelerate research velocity ·      Build logging, metrics, and other experiment-tracking tools for rapid iteration. ·      Design ablation studies and statistical tests that validate—or refute—new ideas. ·      Mentor interns and junior engineers through clear async design docs and code reviews. You’ll work side-by-side with researchers, ship production code, and shape the future of large language models. Why You’ll Love This Job ·      Frontier-scale impact – Train and ship cutting-edge models powering MBZUAI research and industry collaborations. ·      Research × Engineering blend – Move breakthrough papers into real systems and publish your own results. ·      End-to-end mastery – Touch everything from petabyte data loaders to custom low-level kernels—experience that’s rare elsewhere. ·      Open, mission-driven science – Join a transparent culture tackling problems that truly advance AI. ·      Founding-team growth – Help set direction for IFM U.S. and lead the next generation of AI development. Key Responsibilities ·      Framework Ownership – Productionize a PyTorch/JAX pre-training stack and keep it reliable at scale. ·      Custom Optimizer Implementation – Code new algorithms in distributed frameworks directly from mathematical specs. ·      Experiment Infrastructure – Build reusable modules, logging, and metrics dashboards that speed up research cycles. ·      Performance Optimization – Apply kernel fusion, communication optimization, and memory management to thousands of GPU jobs. ·      Distributed Debugging – Rapidly diagnose gradient synchronization, collective-ops, or fault-tolerance issues. ·      Collaboration – Document designs clearly, run post-mortems, and partner with global research teams. Qualifications Must-Haves ·      5 + years combined industry or hands-on research experience with large-scale deep-learning training. ·      Led at least one large-scale transformer pre-training run ·      Expert PyTorch or JAX/Flax plus DeepSpeed, FSDP, Megatron-LM, or MosaicML Composer. ·      Experience with distributed training at scale (100+ GPUs). ·      Proven multi-node GPU work (Slurm, K8s, or Ray) and NCCL/GLOO debugging. ·      Strong software engineering skills on large ML codebases ·      Ownership of mixed- or low-precision paths (bf16, fp8, 4-bit) with accuracy validation. ·      Clear written communication (design docs, RFCs, post-mortems). Nice-to-Haves ·      NeurIPS / ICML / ICLR papers or open-source contributions to major ML frameworks. ·      Experience implementing optimization algorithms (e.g., SGD variants, Adam, second-order methods). ·      Background in numerical computing. ·      Ability to translate math and ·      build high-perf CUDA/Triton kernels. Visa Sponsorship This position is eligible for visa sponsorship. Benefits Include *Comprehensive medical, dental, and vision benefits  *Bonus *401K Plan *Generous paid time off, sick leave and holidays *Paid Parental Leave *Employee Assistance Program *Life insurance and disability

Full job record

Job ID8f700876b04926e8b78b605fb98ca0d9746de474
Org IDbb7fb7ce-62b9-4ed3-9327-02a3c7b7e5d0
Source ID4d111a77-38db-4b88-84a8-24f761a495a9
Board ID4d111a77-38db-4b88-84a8-24f761a495a9
Providerlever
Provider Job Key0f35e9dd-2478-412c-aacd-994c426fa866
TitleResearch Scientist - Distributed Machine Learning
Normalized Title
Statusactive
Activeyes
Location TextSunnyvale, CA
Department
TeamResearch
Employment TypeFull-time
Workplace Typeon_site
Remote Policy
CountryUnited States
RegionCA
CitySunnyvale
Salary RawUSD 150000-450000 per-year-salary
Salary Min150,000
Salary Max450,000
Salary CurrencyUSD
Salary Periodyear
Source URLhttps://jobs.lever.co/ifm-us/0f35e9dd-2478-412c-aacd-994c426fa866
Apply URLhttps://jobs.lever.co/ifm-us/0f35e9dd-2478-412c-aacd-994c426fa866/apply
First Seen At2026-05-29 06:59:53Z
Last Seen At2026-06-06 20:14:05Z
Last Checked At2026-06-06 20:14:05Z
Last Changed At2026-05-29 06:59:53Z
Inactive At
Source Posted At2025-06-09 17:28:25Z
Source Updated At
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=lever/board=ifm-us/date=2026-06-06/2026-06-06T20-14-04-180Z-dba991fe17ae8dd61e2db3cfb8af8d8d910a473e10cffaf0af12daa6be784167.json
Event Fields
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Extensions
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Native Structured
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