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HomeCompaniesDatabricksSenior GenAI Research Engineer - Optimization and Kernels

Senior GenAI Research Engineer - Optimization and Kernels

Databricks · Mountain View, California; San Francisco, California · Active · $166,000–$225,000 / year · Greenhouse

Job facts

FieldValue
CompanyDatabricks
TitleSenior GenAI Research Engineer - Optimization and Kernels
Normalized title-
Department / teamEngineering - Pipeline
LocationMountain View, CA, United States
Work model-
Employment type-
Salary$166,000–$225,000 / year
Statusactive
ATS providerGreenhouse
Posted / first seen2025-11-18 / 2026-05-29
Changed / last seen2026-06-16 / 2026-06-21

Related slices

PageWhat it containsOpen
Company jobsActive postings from Databricks.Open
Company breakdownsRole, location, ATS, and work model facets for this company.Open
ATS provider jobsActive postings observed through Greenhouse.Open
Provider filtered searchThe same provider as a filtered job collection.Open
City jobsActive postings in Mountain View.Open
Department jobsActive postings in Engineering - Pipeline.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

CompanyDatabricks
Sourcee76d888a-29e0-42cd-bf7d-e9482c0e5b5f
ATS providerGreenhouse

Description

At Databricks, we are obsessed with enabling data teams to solve the world’s toughest problems, from security threat detection to cancer drug development. We do this by building and running the world’s best data and AI platform so our customers can focus on the high-value challenges that are central to their own missions. The Databricks AI Research organization enables companies to develop AI models and agents using their own data, with technologies ranging from post-training open source LLMs to developing advanced multi-agent architectures. Databricks AI is committed to the belief that a company’s AI models and agents are just as valuable as any other core IP, and that high-quality AI should be available to all. Job Description As a Sr. Research Engineer on the Scaling team, you will be responsible for keeping up with the latest developments in deep learning and advancing the scientific frontier by creating new techniques that go beyond the state of the art. You will work together on a collaborative team of researchers and engineers with diverse backgrounds and technical training. And most importantly, you will love our customers: our goal is to make our customers successful in applying state-of-the-art LLMs and AI systems, and we encode our scientific expertise into our products to make that possible. The Impact you will have As a research engineer on the Scaling Team at Databricks, you will: Drive performance improvements through advanced optimization techniques including kernel fusion, mixed precision, memory layout optimization, tiling strategies, and tensorization for training-specific patterns Design, implement, and optimize high-performance GPU kernels for training workloads (e.g., attention mechanisms, custom layers, gradient computation, activation functions) targeting NVIDIA architectures Design and implement distributed training frameworks for large language models, including parallelism strategies (data, tensor, pipeline, ZeRO-based) and optimized communication patterns for gradient synchronization and collective operations Profile, debug, and optimize end-to-end training workflows to identify and resolve performance bottlenecks, applying memory optimization techniques like activation checkpointing, gradient sharding, and mixed precision training. What We Look for BS/MS/PhD in Computer Science or related field with hands-on experience writing and tuning CUDA kernels for ML training applications, or hands-on experience in distributed training frameworks (PyTorch DDP, DeepSpeed, Megatron-LM, FSDP) Strong understanding of NVIDIA GPU architecture (memory hierarchy, tensor cores, warp scheduling, SM occupancy) and proficiency with CUDA debugging/profiling tools (Nsight, NVProf) Deep understanding of parallelism techniques and memory optimization strategies for large-scale model training, with proven ability to debug and optimize distributed workloads Strong software engineering skills in Python and PyTorch, with experience supporting production training workflows and knowledge of LLM training dynamics including hyperparameter tuning and optimization strategies. Pay Range Transparency Databricks is committed to fair and equitable compensation practices. The pay range(s) for this role is listed below and represents the expected salary range for non-commissionable roles or on-target earnings for commissionable roles. Actual compensation packages are based on several factors that are unique to each candidate, including but not limited to job-related skills, depth of experience, relevant certifications and training, and specific work location. Based on the factors above, Databricks anticipates utilizing the full width of the range. The total compensation package for this position may also include eligibility for annual performance bonus, equity, and the benefits listed above. For more information regarding which range your location is in visit our page here . Local Pay Range $166,000 — $225,000 USD About Databricks Databricks is the data and AI company. More than 10,000 organizations worldwide — including Comcast, Condé Nast, Grammarly, and over 50% of the Fortune 500 — rely on the Databricks Data Intelligence Platform to unify and democratize data, analytics and AI. Databricks is headquartered in San Francisco, with offices around the globe and was founded by the original creators of Lakehouse, Apache Spark™, Delta Lake and MLflow. To learn more, follow Databricks on Twitter , LinkedIn and Facebook . Benefits At Databricks, we strive to provide comprehensive benefits and perks that meet the needs of all of our employees. For specific details on the benefits offered in your region click here . Our Commitment to Diversity and Inclusion At Databricks, we are committed to fostering a diverse and inclusive culture where everyone can excel. We take great care to ensure that our hiring practices are inclusive and meet equal employment opportunity standards. Individuals looking for employment at Databricks are considered without regard to age, color, disability, ethnicity, family or marital status, gender identity or expression, language, national origin, physical and mental ability, political affiliation, race, religion, sexual orientation, socio-economic status, veteran status, and other protected characteristics. Compliance If access to export-controlled technology or source code is required for performance of job duties, it is within Employer's discretion whether to apply for a U.S. government license for such positions, and Employer may decline to proceed with an applicant on this basis alone.

Full job record

Job ID658a61f12c782448d4ac7c561dc9d9598eb35ffb
Org ID35d19e0b-26e9-43f3-ace9-4c7841dbe8ae
Source IDe76d888a-29e0-42cd-bf7d-e9482c0e5b5f
Board IDe76d888a-29e0-42cd-bf7d-e9482c0e5b5f
Providergreenhouse
Provider Job Key8297797002
TitleSenior GenAI Research Engineer - Optimization and Kernels
Normalized Title
Statusactive
Activeyes
Location TextMountain View, California; San Francisco, California
DepartmentEngineering - Pipeline
Team
Employment Type
Workplace Type
Remote Policy
CountryUnited States
RegionCA
CityMountain View
Salary RawPay Range $166,000 — $225,000 USD About Databricks Databricks is the data and AI company
Salary Min166,000
Salary Max225,000
Salary CurrencyUSD
Salary Periodyear
Source URLhttps://databricks.com/company/careers/open-positions/job?gh_jid=8297797002
Apply URLhttps://databricks.com/company/careers/open-positions/job?gh_jid=8297797002
First Seen At2026-05-29 22:42:59Z
Last Seen At2026-06-21 07:37:51Z
Last Checked At2026-06-21 07:37:51Z
Last Changed At2026-06-16 07:39:17Z
Inactive At
Source Posted At2025-11-18 21:08:04Z
Source Updated At2026-06-15 22:30:50Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=databricks/date=2026-06-21/2026-06-21T07-37-50-227Z-7da28a323ef3c0a0a79582e096b5337aac3b5fd9c096a07242c6e70d2373a2dd.json
Event Fields
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Extensions
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Native Structured
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