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Part Time Evening Library Assistant Jobs in Georgetown, TX

Valet Attendant | Part-time

Austin, TX

$14 - $18.25/hr

The Valet attendant will also assist with luggage and provide information about hotel services and ... Must have an open and flexible schedule that includes morning, afternoon, evening, weekend and ...

part time stylist

Round Rock, TX · On-site

$12 - $19.95/hr

Comply with store security, safety, and loss prevention programs * Assist stock associates with ... Ability to work a flexible schedule to meet the needs of the business, including evening and ...

Showing results 21-40

Part Time Evening Library Assistant information

See Georgetown, TX salary details

$8

$17

$25

How much do part time evening library assistant jobs pay per hour?

As of Aug 22, 2026, the average hourly pay for part time evening library assistant in Georgetown, TX is $17.36, according to ZipRecruiter salary data. Most workers in this role earn between $14.09 and $19.66 per hour, depending on experience, location, and employer.

What is a part time evening library assistant?

Part time evening library assistants are staff members who work in libraries during evening hours, usually on a part-time basis. Their main responsibilities include helping patrons locate materials, checking books in and out, shelving items, and answering basic questions about library services. They may also assist with closing procedures and maintaining a quiet, organized environment. This role is ideal for individuals who are comfortable working with the public and are available during evenings, making it a good fit for students or those seeking supplemental income.

What are the key skills and qualifications needed to thrive as a part time evening library assistant?

To thrive as a Part Time Evening Library Assistant, you need strong organizational skills, attention to detail, and basic computer proficiency, often supported by a high school diploma or equivalent. Familiarity with library management systems, cataloging software, and office applications is typically required. Exceptional customer service, communication, and problem-solving abilities help you engage patrons and handle inquiries effectively. These skills and qualities ensure efficient library operations, positive patron experiences, and a welcoming environment during evening hours.

What are some common challenges faced by a part time evening library assistant, and how can they be managed?

Part Time Evening Library Assistants often encounter challenges such as managing a steady flow of patrons during peak evening hours, addressing last-minute requests before closing, and ensuring the library remains orderly and secure at night. To handle these situations, assistants typically rely on strong organizational skills, clear communication with coworkers, and adherence to closing procedures. Collaborating with other staff members and being proactive in assisting patrons can help create a smooth and efficient evening operation.

What are popular job titles related to Part Time Evening Library Assistant jobs in Georgetown, TX?

For Part Time Evening Library Assistant jobs in Georgetown, TX, the most frequently searched job titles are:

What job categories do people searching Part Time Evening Library Assistant jobs in Georgetown, TX look for?

The top searched job categories for Part Time Evening Library Assistant jobs in Georgetown, TX are:

What cities near Georgetown, TX are hiring for Part Time Evening Library Assistant jobs?

Cities near Georgetown, TX with the most Part Time Evening Library Assistant job openings:

Infographic showing various Part Time Evening Library Assistant job openings in Georgetown, TX as of August 2026, with employment types broken down into 100% Part Time. Highlights an 100% In-person job distribution, with an average salary of $36,104 per year, or $17.4 per hour.

Graduate Research Assistant, Quantitative and Systems Health Services

The University of Texas at Austin

Austin, TX • On-site

$41K/yr

Part-time

Posted 5 days ago


University Of Texas at Austin rating

8.3

Company rating: 8.3 out of 10

Based on 64 frontline employees who took The Breakroom Quiz

126th of 620 rated colleges and universities


Job description

Job Posting Title:
Graduate Research Assistant, Quantitative and Systems Health Services
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Hiring Department:
Quantitative and Systems Health Science (QSHS)
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Position Open To:
All Applicants
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Weekly Scheduled Hours:
20
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FLSA Status:
Exempt from FLSA
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Earliest Start Date:
Aug 24, 2026
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Position Duration:
Expected to Continue Until Dec 31, 2026
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Location:
UT MAIN CAMPUS
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Job Details:
Purpose
The TEAM-AI Lab invites applications from Ph.D. students (or advanced Master's students transitioning to doctoral studies) in Computer Science, Biomedical Informatics, Data Science, or Engineering to join the lab as Graduate Research Assistants.
The GRA role provides advanced doctoral training at the intersection of artificial intelligence, healthcare data science, biomedical discovery, and clinical translation. Working under the supervision of Dr. Hongfang Liu and lab faculty members, GRAs contribute to the execution of active research grants. PhD must have been received within the last three years.
The applicants will join a collaborative research environment at the Translational AI Excellence and Application in Medicine (TEAM-AI) Lab, focusing on accelerating the translation of AI innovations in biomedicine and healthcare. The lab consists of faculty members, program managers/coordinators, data scientists, and scientific programmers. The activities carried out by the team range from advancing AI innovations through big data, empowering biomedical and clinical sciences through team science collaboration and best practices, to building human-centered, value-added, and evidence-based tools, resources, and services to facilitate real-world implementation of said innovations.
Responsibilities
  • Fine-tune, prompt-engineer, and evaluate open-source Large Language Models (LLMs) and Transformer architectures for biomedical data normalization.
  • Map observational healthcare data to data standards and assist in constructing common data elements and knowledge graphs for disease areas.
  • Develop data-preprocessing, feature-engineering, and missing-data imputation pipelines for longitudinal EHR records, time-series vitals, and diagnostic imaging features.
  • Implement and benchmark baseline machine learning algorithms for various predictive modeling tasks in the clinical domain.
  • Maintain open-source code repositories, write technical documentation, and prepare manuscripts for conference submission.

Required Qualifications
  • Enrolled in a Ph.D. program at The University of Texas at Austin in Computer Science, Biomedical Informatics, Data Science, Electrical & Computer Engineering, or a related quantitative field.
  • Proficiency in Python and core computational libraries (NumPy, Pandas, Scikit-Learn, PyTorch/TensorFlow).
  • Coursework or experience in machine learning, deep learning, natural language processing, or probabilistic graphical models.
  • Solid background in linear algebra, multivariable calculus, probability theory, and statistical inference.
  • Written and oral communication skills, with a track record of rigorous code documentation and collaborative software development.

Relevant education and experience may be substituted as appropriate.
Salary Range
$41,600 ($21,800 prorated for .5 FTE (20 hours a week))

Working Conditions
  • May work around standard office conditions
  • Repetitive use of a keyboard at a workstation
  • Use of manual dexterity
  • Occasional weekend, overtime and evening work to meet deadlines

Required Materials
  • Resume/CV
  • Letter of interest

Important for applicants who are NOT current university employees or contingent workers: You will be prompted to submit your resume the first time you apply, then you will be provided an option to upload a new Resume for subsequent applications. Any additional Required Materials (letter of interest, references, etc.) will be uploaded in the Application Questions section; you will be able to multi-select additional files. Before submitting your online job application, ensure that ALL Required Materials have been uploaded. Once your job application has been submitted, you cannot make changes.
Important for Current university employees and contingent workers: As a current university employee or contingent worker, you MUST apply within Workday by searching for Find UT Jobs. If you are a current University employee, log-in to Workday, navigate to your Worker Profile, click the Career link in the left hand navigation menu and then update the sections in your Professional Profile before you apply. This information will be pulled in to your application. The application is one page and you will be prompted to upload your resume. In addition, you must respond to the application questions presented to upload any additional Required Materials (letter of interest, references, etc.) that were noted above.
Employment Eligibility:
Please confirm your eligibility for this position here: http://www.utexas.edu/hr/student/student_acad_employment.html
Retirement Plan Eligibility:
Students in this position may choose to enroll in the UTSaver voluntary retirement programs.
Background Checks:
A criminal history background check will be required for finalist(s) under consideration for this position.
Equal Opportunity Employer:
The University of Texas at Austin, as an equal opportunity/affirmative action employer, complies with all applicable federal and state laws regarding nondiscrimination and affirmative action. The University is committed to a policy of equal opportunity for all persons and does not discriminate on the basis of race, color, national origin, age, marital status, sex, sexual orientation, gender identity, gender expression, disability, religion, or veteran status in employment, educational programs and activities, and admissions.
Pay Transparency:
The University of Texas at Austin will not discharge or in any other manner discriminate against employees or applicants because they have inquired about, discussed, or disclosed their own pay or the pay of another employee or applicant. However, employees who have access to the compensation information of other employees or applicants as a part of their essential job functions cannot disclose the pay of other employees or applicants to individuals who do not otherwise have access to compensation information, unless the disclosure is (a) in response to a formal complaint or charge, (b) in furtherance of an investigation, proceeding, hearing, or action, including an investigation conducted by the employer, or (c) consistent with the contractor's legal duty to furnish information.
Employment Eligibility Verification:
If hired, you will be required to complete the federal Employment Eligibility Verification I-9 form. You will be required to present acceptable and original documents to prove your identity and authorization to work in the United States. Documents need to be presented no later than the third day of employment. Failure to do so will result in loss of employment at the university.
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E-Verify:
The University of Texas at Austin use E-Verify to check the work authorization of all new hires effective May 2015. The university's company ID number for purposes of E-Verify is 854197. For more information about E-Verify, please see the following:
  • E-Verify Poster (English and Spanish) [PDF]
  • Right to Work Poster (English) [PDF]
  • Right to Work Poster (Spanish) [PDF]

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Compliance:
Employees may be required to report violations of law under Title IX and the Jeanne Clery Disclosure of Campus Security Policy and Crime Statistics Act (Clery Act). If this position is identified a Campus Security Authority (Clery Act), you will be notified and provided resources for reporting. Responsible employees under Title IX are defined and outlined in HOP-3031.
The Clery Act requires all prospective employees be notified of the availability of the Annual Security and Fire Safety report. You may access the most recent report here or obtain a copy at University Compliance Services, 1616 Guadalupe Street, UTA 2.206, Austin, Texas 78701.

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