Postdoctoral Appointee - Machine Learning Weather and Climate
2 Months ago
Lemont, Illinois, United States
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Job Description
Argonne National Laboratory is seeking a Postdoctoral Appointee in Machine Learning for Weather and Climate. The role involves extending the predictability of the Stormer ML weather model to subseasonal-to-seasonal forecasts using generative AI. Candidates should have a PhD in relevant fields, experience with deep learning frameworks, and knowledge of large dynamical systems. The position is based in Lemont, IL, and requires collaboration with a team of scientists.
Position: Postdoctoral Appointee - Machine Learning for Weather and Climate
Argonne National Laboratory, a U.S. Department of Energy National Laboratory located near Chicago, Illinois, has an opening for a highly motivated postdoctoral appointee in the Environmental Science Division.
Machine learning (ML), specifically deep learning (DL), has been demonstrated to successfully predict the weather for 1-14 days with skill on par with numerical weather prediction at a fraction of the computational cost.
A group of scientists at Argonne in collaboration with UCLA have successfully implemented a state-of-the-art ML weather model called Stormer. The candidate selected for this role will collaborate with this group of scientists to extend the predictability of Stormer to the subseasonal-to-seasonal (S2S) timeframe. This position will utilize generative AI to create a calibrated ensemble system for S2S at high resolution (30-km) to deliver probabilistic weather forecasts beyond 14 days to allow for actionable, local-scale impacts on infrastructure and communities.
In this role, you can expect to:
+ Contribute technical expertise through analysis and support for programs and projects associated with machine learning, HPC, and computational problems related to earth system science and other dynamical systems.
+ Develop, evaluate, and apply machine learning/computational approaches, synthesis activities, computational tools, compiling results, preparing reports, publications, and documentation.
+ In particular, focus efforts on projects related to applying and developing machine learning-based weather models for the S2S timeframe with an emphasis on generative AI techniques, evaluating such models, and working with a team of scientists interested in pushing the boundary of predictability.
For more information, please see:
+ Stormer model ICLR best paper award: ( https://(Use the "Apply for this Job" box below). change.ai/papers/iclr
2024/7 )
+ Argonne press release: ( https:// )
• * Position Requirements**
Required skills and qualifications:
+ Completed PhD (typically completed within the last 0-5 years) in geophysical sciences, atmospheric science, computer science, or related field
+ Experienced in deep learning, PyTorch or JAX, and scaling deep learning models to large GPU-based machines
+ Technical knowledge of large, dynamical systems (preferability the atmosphere and/or ocean)
+ Expertise in data and model parallelisms for distributed training on large GPU-based machines
+ Expertise in clear, concise writing of technical papers, and interacting and communicating verbally and orally effectively with colleagues
+ Ability to model Argonne's core values of impact, safety, respect, integrity and teamwork
Preferred skills and qualifications:
+ Candidates with experience using diffusion-based or other generative AI methods as well as experience in atmospheric science, especially weather modeling, are particularly sought after
+ Technical knowledge in using HPC systems for visualization and analysis
+ Experience in writing scientific code
+ Effective problem-solving skills, organizational skills, and flexibility in coordinating a broad spectrum of activities
+ Knowledge of atmospheric dynamics, process scale models, and numerical computation techniques
+ Knowledge of data analysis
+ Knowledge of using atmospheric observational datasets, data assimilation techniques, and statistics
+ Familiarity subseasonal-to-seasonal modeling and or coupled atmosphere-ocean modeling
+ Ability to work and communicate with stakeholders from public and private sectors
• * Job Family**
Postdoctoral Family
• * Job Profile**
Postdoctoral Appointee
• * Worker Type**
Long-Term (Fixed Term)
• * Time Type**
Full time
As an equal employment opportunity and affirmative action employer, and in accordance with our core values of impact, safety, respect, integrity and teamwork, Argonne National Laboratory is committed to a diverse and inclusive workplace that fosters collaborative scientific discovery and innovation. In support of this commitment, Argonne encourages minorities, women, veterans and individuals with disabilities to apply for employment. Argonne considers all qualified applicants for employment without regard to age, ancestry, citizenship status, color, disability, gender, gender identity, gender expression, genetic information, marital status, national origin, pregnancy, race, religion, sexual orientation, veteran status or any other characteristic protected by law.
Argonne employees, and certain guest researchers and contractors, are subject to particular restrictions related to participation in Foreign Government Sponsored or Affiliated Activities, as defined and detailed in United States Department of Energy Order 486.1A. You will be asked to disclose any such participation in the application phase for review by Argonne's Legal Department.
_All Argonne offers of employment are contingent upon a background check that includes an assessment of criminal conviction history conducted on an…
Argonne National Laboratory
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1001 - 5000
Sector: EnergyAbout this company
Founders:Enrico Fermi
Founded date:1946
Investors:U.S. Department of Homeland Security, US Department of Energy
Stage:Other
Website:anl.gov
Argonne is a multidisciplinary science and engineering research center, where “dream teams” of world-class researchers work alongside experts from industry, academia and other government laboratories to address vital national challenges...read more
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