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Research Associate for Artificial Intelligence and Machine Learning

The University of Texas at Austin
PICKLE RESEARCH CAMPUS, United Statesfull_timeVerifiedPosted 1 May 2024
💰 $90,000/yr

About the role

Job Posting Title:

Research Associate for Artificial Intelligence and Machine Learning

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Hiring Department:

Texas Advanced Computing Center

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Position Open To:

All Applicants

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Weekly Scheduled Hours:

40

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FLSA Status:

Exempt

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Earliest Start Date:

Immediately

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Position Duration:

Expected to Continue

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Location:

PICKLE RESEARCH CAMPUS

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Job Details:

General Notes

The Texas Advanced Computing Center (TACC) at The University of Texas at Austin is one of the leading supercomputing centers in the world, supporting advances in computational research by thousands of researchers and students. TACC staff help researchers and educators use advanced computing, visualization, and storage technologies effectively, and conduct research and development to make these technologies more powerful, more reliable, and easier to use. TACC staff also educate and train the next generation of researchers, empowering them to make discoveries that advance knowledge and change the world.

If you are not sure that you’re 100% qualified, but up for the challenge – we want you to apply. We believe skills are transferable and passion for our mission goes a long way.

The Texas Advanced Computing Center fosters a culture of innovation, passion, and fun by encouraging staff members to actively collaborate to investigate the latest technologies, team up for charities, and celebrate successes together. TACC promotes a healthy workplace by helping employees achieve balance between their personal and professional lives to increase employee engagement, job satisfaction, and overall well-being. 

Candidates will need to upload a resume, letter of interest, and the names of three references to apply for this position. 

UT Austin offers a competitive benefits package that includes:  

  • 100% employer-paid basic medical coverage 
  • Retirement contributions  
  • Paid vacation and sick time 
  • Paid holidays 

Please visit our Human Resources (HR) website to learn more about the total benefits offered.

Purpose

The Research Associate will work in the Scalable Computational Intelligence group as they support researchers leveraging modern AI/ML techniques. The ideal candidate will have a strong background in data analytics and a passion for research across many science and engineering domains.

Responsibilities 

  • Consult and work with data providers, analysts, systems experts, and other research staff to design, develop, and deploy machine learning and data analytics systems supporting defined project requirements.
  • Mentor TACC staff in machine learning and data analysis techniques and technologies and the support needed for them to work within an HPC cluster environment.
  • Support the application of AI/ML techniques across various set of topics and domains.
  • Support training of AI/ML techniques and best practices to a broad range of researchers
  • Collaborate and propose new funding opportunities supporting research done at TACC.
  • Prepare reviewed papers, technical reports, design, and requirements of data analytic techniques and systems, optimizations, and novel applications across domains supported at TACC.
  • Stay at the forefront of new techniques and technologies applicable to AI/ML systems that support implementations in various science and engineering domains.
  • Other related functions as assigned.

Required Qualifications 

  • Ph. D. in science, engineering, or other related research fields with a strong background in applied data analytics techniques for research.
  • Experience working with AI/ML platforms and algorithms.
  • Experience working with domain experts, researchers, and stakeholders to support different applications for their data analytics needs.
  • The ability to learn and adapt new technologies to enable new capabilities or improve existing ones.
  • Excellent written and verbal communication skills.

Relevant education and experience may be substituted as appropriate. 

Preferred Qualifications 

  • Experience in analyzing both measured and simulated data sources for scientific and engineering research.
  • Experience supporting and extending open-source and open-data products for different research communities.
  • Familiarity with data analysis systems and workflows.
  • Experience training and mentoring researchers in best practices when creating data workflows.
  • Strong problem-

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Company

The University of Texas at Austin

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