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ESRC Trusted AI Project Post-Doctoral Researcher
University of Northumbria
Newcastle upon Tyne, England, United Kingdom£41,064 – £46,049
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ABOUT THE ROLE
As a Research Associate, you will take a leading role in the project Trustworthy
AI for Peer Review: Developing and Validating Composite Research Quality
Indicators. Your work will focus on constructing high-quality REF-aligned
corpora of research outputs, using and extending the full-text cache and
metadata pipelines developed through our software: Macroscope. You will collect,
clean, link, and document text and bibliographic data so that it can support
rigorous testing of AI-assisted research assessment.
You will be responsible for developing reproducible data workflows that link
REF2021 submissions, Units of Assessment, outcome profiles, institutional
metadata, bibliographic records, abstracts, and, where licensing permits,
full-text content. This will involve working with sources such as OpenAlex,
Crossref, Unpaywall, Scopus and REF data, designing robust extraction and
matching methods, maintaining provenance and quality-control records, and
producing well-structured datasets for downstream analysis.
The role will also contribute to the project’s LLM-based evaluation work,
helping to design, run, and analyse experiments that test how large language
models perform in REF-style assessment tasks. This will include supporting
prompt and model comparison, repeated-run evaluation, assessment of stability
and disagreement, and analysis of potential biases or confounding effects. The
post provides an opportunity to work at the frontier of trustworthy AI, research
evaluation, scientometrics, and large-scale text infrastructure, with scope to
publish, present, and help shape policy-relevant demonstrators.
The successful candidate will also have the opportunity to support in the
development of Semantic Space, an Academic Intelligence company that supports
strategic decision making for research intensive organisations.
The role is fixed term for 12 months.
ABOUT THE PROJECT
Trustworthy AI for Peer Review: Developing and Validating Composite Research
Quality Indicators is a UKRI/ESRC Metascience project investigating how
artificial intelligence can support high-stakes research assessment without
displacing expert judgement. Research assessment through peer review, journal
editorial processes and the Research Excellence Framework (REF) is essential to
the research system, but it is increasingly costly, time-consuming and difficult
to scale. At the same time, large language models are creating new possibilities
for analysing and evaluating research outputs.
The project addresses a central challenge: AI-derived research indicators are
often presented as single scores, with limited visibility of uncertainty,
disagreement, instability or bias. The project will develop and validate new
approaches that make the reliability of AI-augmented assessment explicit and
usable by decision-makers. It will combine benchmark datasets, LLM evaluation,
scientometric indicators, uncertainty-aware modelling, Trust Cards, and
user-centred demonstrators for REF panels, journal editors, publishers and
research managers.
Key research areas include:
• Building FAIR, multi-resolution benchmark datasets linking REF submissions,
journal peer-review data, books, bibliographic metadata, abstracts and, where
appropriate, full-text corpora.
• Developing and testing LLM-based approaches to REF-style and peer-review
assessment, including repeated-run evaluation, prompt comparison, model
comparison, and calibration against known assessment outcomes.
• Creating indicators that communicate uncertainty, disagreement, stability,
bias sensitivity and limits of valid use, rather than reducing complex
judgements to opaque single scores.
• Developing transparent governance and communication tools, including Trust
Cards, open-source workflows, documentation and demonstrators for responsible
use of AI in research evaluation.
The project is delivered by an interdisciplinary consortium led by Loughborough
University with Northumbria University, Durham University, Heriot-Watt
University, the University of Southampton, the University of Aberdeen and the
University of Wolverhampton, bringing together expertise in machine learning,
scientometrics, accountable AI, computational reasoning, human-centred design,
metascience and research evaluation practice.
ABOUT THE TEAM
The project team brings together researchers working across trustworthy AI,
machine learning, scientometrics, human-centred design, computational reasoning,
research policy and responsible innovation. The wider consortium includes
specialists in uncertainty-aware AI, peer-review analysis, accountable AI,
argumentation, stakeholder engagement and research evaluation.
At Northumbria University, the role will be based within Professor Martyn
Dade-Robertson’s research environment, building on existing work on Macroscope:
a software and data pipeline for mapping, analysing and interpreting large
corpora of academic research. The Northumbria contribution focuses on the
empirical data backbone of the project, including corpus construction, full-text
and metadata processing, REF-aligned benchmarking, and interpretable
demonstrators that help experts understand complex research landscapes (see
www.semanticspace.ai [http://www.semanticspace.ai]).
ABOUT YOU
We are looking for a highly motivated postdoctoral Research Associate with
strong skills in data handling, computational text analysis and reproducible
research.
You will have experience of programming for data-intensive research,
ideally using Python and associated tools for APIs, web data extraction, text
processing, databases, data cleaning, version control and workflow
documentation. Experience with NLP, large language models, bibliometrics,
scientometrics, research information systems, OpenAlex/Crossref/Unpaywall, REF
data, or full-text extraction pipelines would be especially valuable. You do not
need prior experience of REF assessment, but you should be interested in how
data and AI can be used responsibly in high-stakes research evaluation.
Further information about the requirements of the role is available in the
person specification
[https://livenorthumbriaac.sharepoint.com/:w:/s/role-descriptions/IQB7Qa-0PowuQKJPM33NInN1AVAUp523JUyZP1YX7hQNCUw?e=EAeMd1].
If you would like an informal discussion
about the role, please contact Prof
Martyn Dade-Robertson (martyn.dade-robertson@northumbria.ac.uk).
To apply for this vacancy, please click 'Apply Now'. Your application should
include a covering letter and a CV.
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