Research Assistant/Associate in Data Science for Construction Productivity (Fixed Term)
Cambridge Service Alliance
Date: 3 weeks ago
City: Cambridge
Contract type: Full time

A position exists, for a Research Assistant/Associate in the Department of Engineering, to work on Data Science for Construction Productivity. The researcher's responsibilities will include the development and implementation of machine learning (ML), computer vision (CV), large language models (LLMs), and vision-language models (VLM) to automate data extraction and interpretation for productivity measurement in construction.
The skills, qualifications and experience required to perform the role are:
Salary Ranges
Research Assistant: £33,002 - £35,608; Research Associate £37,694 - £46,049.
Fixed-term: The funds for this post are available for 12 months in the first instance.
Click the 'Apply' button below to register an account with our recruitment system (if you have not already) and apply online.
Please ensure that you upload your Curriculum Vitae (CV), a covering letter detailing how your experience meets the person profile requirements, a copy of your degree(s) certificate(s) along with a full transcript, and research publication list in the Upload section of the online application. If you upload any additional documents which have not been requested, we will not be able to consider these as part of your application. Please submit your application by midnight on the closing date.
If you have any questions about this vacancy or the application process, please contactJan Wojtecki, Laing O'Rourke Centre Manager by email at [email protected]. For queries of a technical nature about the role, please contact Dr Brian Sheil at [email protected].
Please quote reference NM47014 on your application and in any correspondence about this vacancy.
The University actively supports equality, diversity and inclusion and encourages applications from all sections of society.
The University has a responsibility to ensure that all employees are eligible to live and work in the UK.
Apply online
The skills, qualifications and experience required to perform the role are:
- Hold (or be close to obtaining) a PhD in Computer Science, Civil Engineering, Data Science, Information Systems, or a related field.
- Strong analytical and critical thinking skills.
- Strong machine learning (ML), computer vision (CV), large language models (LLM) for quantitative data, texts, images, and sensor-based data.
- Experience in automated collection of unstructured and structured data in different formats, and translating these into a standard format for analysis, interpretation, and dashboard development.
- Experience of working with industry partners is desirable.
- Excellent English language proficiency.
- Excellent verbal and non-verbal communication skills including the ability to write concise and well-presented text in academic papers and/or industry reports.
- Evidence of working collaboratively in multidisciplinary teams and able to liaise and work with a full range of the Laing O'Rourke Centre stakeholders including academics and industry.
Salary Ranges
Research Assistant: £33,002 - £35,608; Research Associate £37,694 - £46,049.
Fixed-term: The funds for this post are available for 12 months in the first instance.
Click the 'Apply' button below to register an account with our recruitment system (if you have not already) and apply online.
Please ensure that you upload your Curriculum Vitae (CV), a covering letter detailing how your experience meets the person profile requirements, a copy of your degree(s) certificate(s) along with a full transcript, and research publication list in the Upload section of the online application. If you upload any additional documents which have not been requested, we will not be able to consider these as part of your application. Please submit your application by midnight on the closing date.
If you have any questions about this vacancy or the application process, please contactJan Wojtecki, Laing O'Rourke Centre Manager by email at [email protected]. For queries of a technical nature about the role, please contact Dr Brian Sheil at [email protected].
Please quote reference NM47014 on your application and in any correspondence about this vacancy.
The University actively supports equality, diversity and inclusion and encourages applications from all sections of society.
The University has a responsibility to ensure that all employees are eligible to live and work in the UK.
Apply online
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