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The University of British Columbia invites applications for a SAU Data Scientist within the Sea Around Us project. This role focuses on developing machine learning based tools for fisheries catch analysis, redesigning data-processing workflows, and building visualization interfaces for the Sea Around Us database and website.
The candidate will work with statistics, data science, and software engineering teams to ensure robust data integrity, scalable analyses, and transparent methodologies,
AAPS Salaried - Statistical Analysis, Level A
Staff - Non Union
M&P - AAPS
SAU Data Scientist
Research 2 | Pauly | Institute for the Oceans and Fisheries | Faculty of Science
$6,631.67 - $9,533.25 CAD Monthly
The Compensation Range is the span between the minimum and maximum base salary for a position. The midpoint of the range is approximately halfway between the minimum and the maximum and represents an employee that possesses full job knowledge, qualifications and experience for the position. In the normal course, employees will be hired, transferred or promoted between the minimum and midpoint of the salary range for a job.
October 11, 2026
Note: Applications will be accepted until 11:59 PM on the Posting End Date.
August 31, 2027
At UBC, we believe that attracting and sustaining a diverse workforce is key to the successful pursuit of excellence in research, innovation, and learning for all faculty, staff and students. Our commitment to employment equity helps achieve inclusion and fairness, brings rich diversity to UBC as a workplace, and creates the necessary conditions for a rewarding career.
The Sea Around Us is a research initiative, which, since its inception in 1994, has made available an online searchable Atlas of reconstructed marine capture fisheries catches from 1950 to the present of all maritime countries of the world via its website at www.seaaroundus.org. This global catch database permits the testing of fisheries-related global hypotheses applied to marine conservation concerns and has served as the underlying database for many articles published by the Sea Around Us members and their collaborators in peer‑reviewed journals.
This position is responsible for the development of machine learning based tools for fisheries catch analysis, redesigning existing data-processing workflows, and building data visualization tools and interfaces for the Sea Around Us database and website.
This position supports the Sea Around Us in its continued effort to provide robust and reliable fisheries datasets for the public through modernizing the computational and analytical methodologies of the Sea Around Us system.
The Data Scientist is a member of the core Sea Around Us team. This position reports directly to the Research Unit Manager, Dr Maria L.D. Palomares, and as required to the Principal Investigator, Dr. Daniel Pauly.
This position requires the execution of a considerable amount of judgement, responsibility and initiative in determining work procedures, and methods. It also requires the coordination of work flows between the database team and domain experts. Incorrect decisions or judgment will directly affect the research group’s deliverable timelines, other research groups, NGOs and collaborators, and public users of our website and data. Errors in decision‑making could negatively impact the reputation of the research lab, Program, Faculty and University.
Routine work is carried out independently after completion of training, lab orientation, and familiarization with existing methods and projects. The role reports directly to the Research Unit Manager, Dr Maria Palomares and may defer to the Principal Investigator, Dr. Daniel Pauly for unusual occurrences. The successful candidate works independently under minimal supervision.
The successful candidate provides technical direction and training to the Sea Around Us database and website teams, as well as student researchers on data analysis best practices and data literacy to broader staff. Additionally, the role acts as a specialized technical consultant to external research facilities, including local, national, and international collaborators on analytical and database challenges.
Post‑graduate degree in Statistics. Minimum of two years of related experience in research analysis, or the equivalent combination of education and experience.