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The University of Chicago Data Scientist - JR28390-3800 in Chicago, Illinois

This job was posted by https://illinoisjoblink.illinois.gov : For more information, please see: https://illinoisjoblink.illinois.gov/jobs/12413634 Department

UL Crime Ed Lab

About the Department

Who We Are

In cities across the country, people face high rates of gun violence, under-resourced schools, and social harms associated with the criminal justice system -- all of which disproportionately impact people of color. These inequalities have profound consequences on public safety and opportunity. As a society we have failed to address these challenges, in part, because of our lack of understanding of the most effective and cost-effective solutions that can have a real impact on people\'s lives. We believe that rigorous research can help.

The University of Chicago Crime Lab and Education Lab partner with cities and communities to use data and rigorous research to design, test, and scale programs and policies that enhance public safety, improve educational outcomes, and advance justice. Our mission is to combine world-class data science and research, in partnership with government agencies, to substantially improve the effectiveness of the public sector and achieve impact at scale.

The Role

The University of Chicago Crime Lab and Education Lab are seeking a data scientist to work on our portfolio of projects applying machine learning to public policy. We\'re seeking a smart, motivated, and detail-oriented person to work on all parts of our applied machine learning projects - all the way from cleaning and structuring raw data to developing predictive models and evaluating them in a randomized control trial. An ideal candidate will have experience extracting insights from data and communicating them to both technical and non-technical audiences.

The position offers the opportunity to work directly with leading researchers at the University of Chicago and policymakers on projects with immediate real-world impact. You will collaborate closely with PhD-level computer science and economics researchers, as well as top-notch research managers and organizational leadership. This position is particularly well-suited for candidates who may be interested in pursuing a PhD in the future or for data scientists who want to transition from industry to public policy research.

Job Summary

The job provides professional support and solves problems in collecting, organizing, and analyzing information from the University\'s various internal data systems as well as from external sources The job performs data analysis assignments related to data manipulation, statistical applications, programming, analysis and modeling in order to support projects.

Responsibilities

  • Contributes to the design, implementation, and validation of an efficient and reproducible data processing pipeline.
  • Builds and rigorously evaluates statistical models using best practices of machine learning and statistical inference.
  • Prepares project memos, summaries, presentations, reports, and other work products for dissemination targeting both policymakers, academic researchers, and other stakeholders, as needed.
  • Analyzes moderately complex data sets for the purpose of extracting and purposefully using applicable information.
  • Provides professional support to staff or faculty members in defining the project and applying principals of data science in manipulation, statistical applications, programming, analysis and modeling.
  • Performs other related work as needed.

Minimum Qualifications

Education:

Minimum requirements include a college or university degree in related field.

Work Experience:

Minimum requirements include knowledge and skills developed through 2-5 years of work experience in a related job discipline.

Certifications:

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Preferred Qualifications

Education:

  • B chelor\'s degree in computer science, statistics, data science, economics or a closely related field.

Experience:

  • Proficiency with statistical data analysis and machine learning using Python or R. Ability to work in both is strongly preferred.

Preferred Competencies

  • Advanced knowledge of machine learning techniques and algorithms.
  • Experience developing reproducible and maintainable code.
  • Excellent written and verbal communication skills, with the ability to present data in a simple and straightforward way for non-technical audiences.
  • Strong interpersonal skills.
  • Strong initiative and a resourceful approach to problem solving and learning.
  • Ability to work independently and as part of a team in a fast-paced environment.
  • Sound critical thinking skills.
  • Strong attention to detail with superb analytical and organization skills.
  • Familiarity with program evaluation and causal inference.

Application Documents

Resume (required)

Cover letter (required)

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