Deep Learning for Earth System Modeling Evaluation Postdoctoral Researcher

LLNL

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profile Job Location:

Livermore, CA - USA

profile Monthly Salary: Not Disclosed
Posted on: 18 hours ago
Vacancies: 1 Vacancy

Job Summary

We have an opening for a Postdoctoral Researcher in Deep Learning for Earth System Modeling who will conduct cutting edge research at the intersection of deep learning atmospheric science and statistical methods to advance the evaluation and testing of AI-based Earth System this position you will be responsible for operationalizing to AI-based weather and climate models and rigorously evaluating their performance against observations and traditional models. You will collaborate with a multidisciplinary team of experts in machine learning atmospheric science Earth System modelling and model performance assessment. 

This position is in the Climate Sensitivity and Impacts Group within the Atmospheric Earth and Energy Division.

Note: This is a two-year Postdoctoral appointment with the possibility of extension to a maximum of three years.

 

In this role you will

  • Conduct research on the ability of Deep Learning Earth System Models (DL-ESMs) to accelerate Earth System science.
  • Apply a set of standard metrics based on DL-ESM outputs and design develop and carry out innovative advanced experiments (e.g. storyline analyses or implementing nudging methods) to evaluate the trustworthiness of DL-ESMs against conventional ESMs and observational datasets.
  • Engage and actively contribute to the international initiative AI-MIP an effort to define a standard set of experiments for evaluating and benchmarking state-of-the-art DL-ESMs.
  • Pursue independent research and work closely with colleagues in a multidisciplinary team environment to advance research goals.
  • Prepare comprehensive documentations of findings to guide future users.
  • Publish research results in peer-reviewed scientific or technical journals and present results at external conferences and seminars.
  • Travel as required to coordinate research with collaborators or participate in relevant hackathons.
  • Perform other duties as assigned.

Qualifications :

  • PhD in Atmospheric Science Data Science or related field.
  • Experience conducting research in atmospheric science or closely related fields.
  • Ability to manipulate and analyze large and complex ESM output datasets such as those collected in the Coupled Model Intercomparison Project.
  • Proficient programming skills using Python and demonstrated experience with deep learning frameworks (e.g. PyTorch TensorFlow).
  • Experience using high-performance computing environments.
  • Proficient verbal and written communication skills as evidenced by peer reviewed publications and presentations.
  • Ability to work independently as well as effectively in a collaborative multidisciplinary team environment.
  • Ability to travel as required.

 

Qualifications We Desire

  • Experience developing and applying advanced statistical algorithms or machine learning models for one or more of the following applications: weather forecasting subseasonal-to-seasonal (S2S) prediction storyline analysis nudging green function or dynamical adjustment.
  • Familiarity with the analysis of weather extremes variability across time scales or the impact of extreme events on infrastructure natural or human systems.
  • Experience with one AI-based weather prediction model for example NeuralGCM ACE2 GenCast WeatherNext 2 is a plus.

Pay Range

$123048 Annually


Additional Information :

All your information will be kept confidential according to EEO guidelines. 

 

 

 

Position Information

This is a Postdoctoral appointment with the possibility of extension to a maximum of three years open to those who have been awarded a PhD at time of hire date.

Why Lawrence Livermore National Laboratory

We have an opening for a Postdoctoral Researcher in Deep Learning for Earth System Modeling who will conduct cutting edge research at the intersection of deep learning atmospheric science and statistical methods to advance the evaluation and testing of AI-based Earth System this position you will b...
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