Remote: TFH - Face Deduplication Collection

04 ago - Reggio Emilia
TELUS Digital AI Data Solutions

The objective of this project is to collect a large and diverse dataset of current neutral selfies, head-pose captures, and historical facial images to support machine-learning research and facial recognition model training at TELUS.

The focus is on capturing real-world variation across lighting, poses, expressions, accessories, environments, and aging to improve model accuracy and robustness. The collection includes:

• Current Neutral Selfies – clean frontal selfies serving as high-quality identity references, with natural variation in appearance and surroundings.

• Current Head-Pose Captures – selfies captured in assigned head directions to introduce pose variation.

• Historical Images – older photos from participants’ galleries to capture natural aging and long-term appearance changes.

To qualify for payment, you must submit a minimum of 20 valid images.



The maximum payout is based on 24 accepted images. Due to the strict automated and manual Quality Control (QC) process, we strongly recommend submitting 30 images to help ensure that enough images remain valid after review

Note: Please use a Gmail address as your primary account when applying for this project.

Qualification path

No specific education is needed to perform the project task.

Once you have successfully applied and registered, please send a confirmation email to with the subject line: Subject: Application Confirmation - [Job Title] via (Site Name) to ensure your application is processed. Please include the email address you used to register.

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