Research Associate I

Posted 3 Hours Ago
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Miami, FL, USA
In-Office
Entry level
Other
The Role
Conducts research using crewed and uncrewed tropical cyclone reconnaissance data to improve hurricane analysis and forecasting. Develops and evaluates machine learning methods for estimating tropical cyclone surface winds, creates real-time products for National Hurricane Center testing, runs and verifies HAFS forecasts, manages and visualizes complex data, uses high-performance computing, publishes findings, and presents results at conferences.
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The Cooperative Institute for Marine and Atmospheric Studies (CIMAS) of the University of Miami (UM) is currently seeking applicants for a full-time Research Associate I position. The successful candidate will participate in research projects that use data from crewed and uncrewed TC reconnaissance missions to improve analysis and prediction of TCs.  The first primary focus will be to develop machine learning methods to accurately estimate surface winds within the TC when they are otherwise not available.  Candidates should be prepared to develop real-time products to be delivered to the National Hurricane Center for testing and evaluation.  A second primary focus will be to quantify the impact of various crewed and uncrewed observing systems on analyses and forecasts of TCs. The candidate will work closely with the National Oceanic and Atmospheric Administration’s (NOAA) Atlantic Oceanographic and Meteorological Laboratory (AOML).

We are searching for an experienced and productive researcher whose primary responsibilities will include:

  • Development, testing, and evaluation of machine learning techniques trained on data gathered within TCs
  • Using the NOAA Hurricane Analysis and Forecast System (HAFS) with various data input sources to evaluate
  • Verification of HAFS forecasts
  • Responsible and effective use of high-performance computing environments
  • Data management and visualization using modern programming languages (e.g., Python)
  • Processing complex data to produce easily understandable results
  • Interpret and publish results in progress reports and peer reviewed literature
  • Present the results at meetings and conferences

Qualified candidates must possess a bachelor’s in Meteorology or Atmospheric Science. Demonstrated familiarity with tropical cyclone reconnaissance data, proficiency in machine learning applications, and running and tuning hurricane models in high-performance computing environments is also required.  Familiarity with NOAA operational hurricane models is also desirable, as is proficiency in Python and JavaScript.

The University of Miami is recognized as one of the nation’s premier research institutions and academic health systems and is among the largest employers in South Florida.

With more than 20,000 faculty and staff, the University is committed to excellence and guided by a mission to positively impact the lives of students, patients, and communities locally and globally.

We are dedicated to fostering a culture where every individual feels valued and empowered to contribute meaningfully. United by shared values, the University community works together to build an environment defined by purpose, collaboration, and service.

The University of Miami is an Equal Opportunity Employer. Applicants and employees are protected from discrimination based on certain categories protected by Federal law. Click here for additional information.

Job Status:

Full time

Employee Type:

Staff

Skills Required

  • Bachelor's degree in Meteorology or Atmospheric Science
  • Familiarity with tropical cyclone reconnaissance data
  • Proficiency in machine learning applications
  • Experience running and tuning hurricane models in high-performance computing environments
  • Familiarity with NOAA operational hurricane models
  • Proficiency in Python
  • Proficiency in JavaScript
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The Company
HQ: Miami, FL
17,000 Employees

What We Do

The University of Miami is a leading research university dedicated to transforming lives through education, research, innovation, and service.

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