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Freelance Systematic Review Meta Analysis Jobs (NOW HIRING)

Implement and interpret HTA validated meta-analytic methods and indirect treatment comparisons ... base from systematic literature reviews to identify inferences, methods, key limitations and ...

Demonstrated proficiency through previous systematic reviews (and meta-analysis). The ideal candidate will have : * Implementation science methods expertise. * Strong written and oral communication ...

Demonstrated proficiency through previous systematic reviews (and meta-analysis). The ideal candidate will have : * Implementation science methods expertise. * Strong written and oral communication ...

... in systematic literature reviews and/or indirect treatment comparisons (e.g. NMA, MAIC, STC) for ... Multivariate network meta-analysis of survival function parameters. Research synthesis methods ...

Freelance Writer

Chicago, IL · On-site

$22 - $28/hr

Applicants will be required to send a portfolio link or writing samples for review. Please ensure ... external links, meta data, citing sources, and more * Adhere to directions and deadlines ...

Freelance Writer

Chicago, IL · On-site +1

$22 - $28/hr

Applicants will be required to send a portfolio link or writing samples for review. Please ensure ... external links, meta data, citing sources, and more * Adhere to directions and deadlines ...

... reviewing work, and ensuring quality and consistency across markets and channels * Establish ... freelancers, and external partners Preferred Qualifications: * Experience bringing clarity to ...

Work with members of GHO team to develop non-interventional studies on disease burden, treatment patterns and patient experience and/or systematic literature reviews, meta-analyses, indirect ...

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Freelance Systematic Review Meta Analysis information

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How much do freelance systematic review meta analysis jobs pay per hour?

As of Jun 10, 2026, the average hourly pay for freelance systematic review meta analysis in the United States is $47.71, according to ZipRecruiter salary data. Most workers in this role earn between $24.28 and $61.78 per hour, depending on experience, location, and employer.

What are some common challenges faced by freelance professionals conducting systematic reviews and meta-analyses, and how can they be addressed?

Freelance professionals in systematic reviews and meta-analyses often encounter challenges such as access to full-text articles, managing large datasets, and ensuring methodological rigor without the support of a larger research team. To address these, freelancers can leverage open-access databases, invest in reference management and statistical analysis software, and stay updated with best practices by participating in relevant workshops or online communities. Effective time management and clear communication with clients about project timelines and deliverables are also essential for success in this role.

What is a Freelance Systematic Review Meta Analysis specialist?

A Freelance Systematic Review Meta Analysis specialist is an independent researcher who conducts systematic reviews and meta-analyses, often for academic, medical, or scientific organizations. They thoroughly search for, evaluate, and synthesize existing research studies on a specific topic to provide comprehensive evidence summaries. Their work helps guide decision-making in healthcare, policy, and research by offering unbiased, data-driven insights. Freelancers in this role work on a project basis, managing their own schedules and clients.

What are the key skills and qualifications needed to thrive as a Freelance Systematic Review Meta Analyst, and why are they important?

To thrive as a Freelance Systematic Review Meta Analyst, you need expertise in literature searching, critical appraisal, and statistical analysis, typically supported by an advanced degree in a relevant field. Familiarity with reference management tools (like EndNote), systematic review software (such as Covidence or RevMan), and statistical packages (like R or Stata) is vital. Attention to detail, strong organizational skills, and clear written communication set top analysts apart. These skills ensure the accuracy, reliability, and clarity of systematic reviews and meta-analyses, which underpin evidence-based decision-making.

What is the difference between Freelance Systematic Review Meta Analysis vs Freelance Research Assistant?

AspectFreelance Systematic Review Meta AnalysisFreelance Research Assistant
CredentialsAdvanced knowledge in research methods, statistics, and subject matter expertiseBasic research skills, often with a degree in related field
Work EnvironmentIndependent, project-based, often remoteVaries; may work remotely or on-site, supporting research projects
Industry UsageAcademic, healthcare, or scientific researchAcademic, market research, or organizational support roles

Freelance Systematic Review Meta Analysis involves synthesizing research data to draw comprehensive conclusions, requiring specialized skills. Freelance Research Assistants support various research tasks, often with broader responsibilities. The former demands higher expertise in data analysis, while the latter provides general research support.

More about Freelance Systematic Review Meta Analysis jobs
What cities are hiring for Freelance Systematic Review Meta Analysis jobs? Cities with the most Freelance Systematic Review Meta Analysis job openings:
What are the most commonly searched types of Systematic Review Meta Analysis jobs? The most popular types of Systematic Review Meta Analysis jobs are:
What states have the most Freelance Systematic Review Meta Analysis jobs? States with the most job openings for Freelance Systematic Review Meta Analysis jobs include:
What job categories do people searching Freelance Systematic Review Meta Analysis jobs look for? The top searched job categories for Freelance Systematic Review Meta Analysis jobs are:
Infographic showing various Freelance Systematic Review Meta Analysis job openings in the United States as of June 2026, with employment types broken down into 61% Full Time, 28% Part Time, and 11% Contract. Highlights an 61% In-person, 11% Hybrid, and 28% Remote job distribution, with an average salary of $99,230 per year, or $47.7 per hour.

Postdoctoral Research Fellow - Agentic AI for Systematic Reviews and Human-LLM Collaboration

Uq

Campus, IL • On-site

$83K - $111K/yr

Full-time

PTO

Posted 5 days ago


Job description

  • Faculty of Engineering, Architecture and Information Technology / School of Electrical Engineering and Computer Science

  • Full-time fixed-term position for up to 18 months

  • Base salary will be in the range $83,698.91 - $111,431.10 + 17% super (Academic Level A)

  • Based at our St Lucia Campus

About This Opportunity

We are seeking an outstanding Postdoctoral Research Fellow to contribute to ambitious, highimpact research at the intersection of Artificial Intelligence, Information Retrieval, Natural Language Processing, digital health, and HumanComputer Interaction. Working within a collaborative and multidisciplinary research environment, you will help design and deliver novel methods and opensource systems that leverage Large Language Models to support evidence synthesis, relevance assessment, and human-AI collaborative decisionmaking.

This role offers a rare opportunity to combine methodological innovation with practical research software development, contributing to globally relevant research outcomes and platforms.

Key responsibilities will include:

  • Research and Algorithm Development: Conduct high-quality research in areas related to LLM-assisted systematic reviews, IR, NLP, Retrieval-Augmented Generation (RAG), and human-AI collaboration. Develop novel approaches for literature screening, relevance assessment, evidence synthesis, AI-assisted ranking, and collaborative review workflows. Lead and contribute to publications in leading venues and journals in Information Retrieval, AI, NLP, digital health, and health informatics. Assist with the preparation of grant applications and collaborative research proposals.

  • Research Software and Platform Development: Design, develop, and maintain scalable research software systems supporting AI-assisted systematic review workflows and relevance assessment tasks. Contribute to the development of open-source platforms integrating LLMs into evidence synthesis workflows. Develop and maintain APIs, retrieval pipelines, vector search systems, databases, and cloud-based infrastructure for LLM-assisted applications. Support experimentation with commercial and open-source LLMs, semantic retrieval systems, and RAG pipelines.

  • User Studies and Human-AI Collaboration Research: Design and conduct user studies investigating the effectiveness, usability, trustworthiness, and cognitive impact of AI-assisted relevance assessment and systematic review systems. This includes research involving platforms for systematic reviews and projects on User-LLM Collaboration in relevance judgement.

  • Develop experimental protocols and evaluation methodologies to study how different forms of LLM assistance influence human decision-making, screening behaviour, relevance judgements, efficiency, and perceived utility. Analyse user interaction data and contribute to publications related to human-AI collaboration, trustworthy AI, and interactive information retrieval.

  • Supervision and Researcher Development: Provide supervision and mentoring to HDR students and research assistants, and contribute to the supervision of capstone and projectbased students as required. Support a positive and inclusive research culture through collaborative project work, feedback, and shared scholarly practice.

  • Citizenship and Service: Contribute to technical documentation, reproducible research workflows, software demonstrations, tutorials, workshops, and broader collaborative research activities. Actively foster a collegial, inclusive, and respectful research environment aligned with UQ values.

This is a research focused position. Further information can be found by viewing UQ's Criteria for Academic Performance.

About You

Our ideal candidate will be a selfmotivated, inquisitive, and solutionsfocused researcher who thrives in interdisciplinary environments and is motivated to contribute meaningfully to collaborative research programs. You will combine strong technical capability with excellent communication skills and a commitment to highquality, reproducible research.

You will have:

  • Completion or near completion of a PhD in Computer Science, Artificial Intelligence, Information Retrieval, Natural Language Processing, Data Science, Human-Computer Interaction, Health Informatics, or a closely related field.

  • Strong research track record relative to opportunity, demonstrated through publications in relevant venues.

  • Demonstrated expertise in one or more of the following areas:

    • Large Language Models (LLMs)

    • Information Retrieval (IR)

    • Natural Language Processing (NLP)

    • Retrieval-Augmented Generation (RAG)

    • Human-AI collaboration systems

    • Interactive information retrieval

    • Systematic review automation

    • Machine learning and deep learning

  • Experience conducting empirical evaluations, user studies, or experimental research involving human participants is highly desirable.

  • Strong programming and software engineering skills, particularly in Python and modern AI/ML frameworks such as PyTorch, Hugging Face Transformers, LangChain, or LlamaIndex.

  • Experience with backend or full-stack software development, APIs, databases, vector search systems, Docker, Kubernetes, and cloud platforms, such as AWS or GCP is desirable.

  • Demonstrated ability to work collaboratively in interdisciplinary research environments and contribute to team-based research projects.

  • Excellent written and verbal communication skills.


About UQ

As part of the UQ community, you will have the opportunity to work alongside the brightest minds, who have joined us from all over the world, and within an environment where interdisciplinary collaborations are encouraged. As part of our commitment to excellence in research and professional practice in academic contexts, we are proud to provide our staff with access to world-class facilities and equipment, grant writing support, greater research funding opportunities, and other forms of staff support and development.

The greater benefits of joining the UQ community are broad: from being part of a Group of Eight university, to recognition of prior service with other Australian universities, up to 26 weeks of paid parental leave, 17.5% annual leave loading, flexible working arrangements, access to exclusive internal-only vacancies, and genuine career progression opportunities via the academic promotions process.


Interested?

For more information about this opportunity, please contact Dr. Teerapong Leelanupab t.leelanupab@uq.edu.au. For application inquiries, please reach out to the Talent Acquisition team at talent@uq.edu.au, stating the job reference number (below)in the subject line.

When you apply, please ensure you upload a resume, cover letter, and responses to the 'About You' section. Please note that applications received via email will not be accepted.

Other Information

Pre-employment checks may include: verification of the right to work in Australia, qualifications and criminal history checks. This may also include checks relating to gender-based violence matters or other integrity and conduct requirements.

You must maintain unrestricted work rights in Australia for the duration of this appointment to apply. Employer sponsored work rights are not available for this appointment.

We're dedicated to equity, diversity, and inclusion. We recognise that career pathways and opportunities differ, and encourage applications from candidates who may not meet every criteria but can demonstrate their potential relative to opportunity. We're also happy to support any accessibility needs throughout the recruitment process. Just let us know how we can help by emailing talent@uq.edu.au or calling +61 7 3365 2623.

Applications close Sunday June 14th 2026 at 11.00pm AEST (R-65547). Please note that interviews have been tentatively scheduled for Friday 19 June 2026.