Lead Data Scientist

S27a

Burnaby

On-site

CAD 120,000 - 180,000

Full time

14 days+

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Job summary

Sixone is building advanced recycling technologies and real-time ML systems for material sorting and process decisions. The role leads a team of data scientists and ML engineers, while contributing hands-on coding and model development.

Expect to shape technical direction, mentor teammates, and ship production-ready models in a dynamic environment. You will work with Python/SQL stacks, PyTorch, OpenCV, and MLflow, deploying on AWS and edge devices, with a focus on robust, scalable ML systems for

Qualifications

  • ,Requirements include 4+ years in data science or ML with CV/spectral data focus.
  • Demonstrated leadership: tech lead, mentoring or project ownership; not strictly required to manage people.

Responsibilities

  • Provide technical leadership for ML systems (65%) and translate requirements into scalable designs.
  • Develop and benchmark deep learning architectures for high-dimensional spectral data (classification, segmentation, anomaly detection).
  • Build and manage data pipelines in Python/SQL; integrate data from imaging/edge devices, including proprietary formats.
  • Lead, mentor, and grow a team of data scientists and ML engineers; drive work planning and priorities.
  • Partner with Engineering/R&D/Production to move models from lab to pilot to production.
  • Maintain documentation for experiments, data workflows, models for IP protection and compliance.
  • Stay current with ML sensing/imaging advances and bring methods into the team.

Skills

Data science leadership
Team mentoring
Communication
Python programming
SQL
Computer vision

Education

Master's or Ph.D. in Computer Science, Electrical Engineering, Physics, or related field

Tools

Python
SQL
PyTorch
OpenCV
Docker
CI/CD
MLflow
ONNX/TensorRT

Job description

Company

Sixone’s mission is to enable a world where blended plastics products can be circularly recycled back into existing supply chains instead of being sent to landfill. Sixone is developing technologies to enable advanced recycling of blended plastics and plastic-based products. The company’s technology applies process digitalization and advanced analytics to build a depolymerization reactor tailored to enable efficient plastics recycling. The company aims to fundamentally change the economics behind current recycled materials through advanced processing and materials technologies.

Overview of Role

This role focuses on applying data science and machine learning techniques to make real-time sorting and process decisions. Your team’s core challenge is to build robust representations of materials from high-dimensional sensor data and turn them into models that run reliably. You will lead a team of data scientists and machine‑learning engineers as a player‑coach: you set a technical direction, mentor the team, and still ship code. Expect 65% hands‑on technical work and 35% leadership.

Responsibilities

Technical leadership (65%)

  • Lead architectural decisions for Sixone’s ML systems by translating scientific and product requirements into scalable, maintainable system designs.

  • Develop and benchmark novel deep learning architectures for high-dimensional spectral data, including classification, segmentation, anomaly detection, and representation learning.

  • Build and manage data pipelines in Python and SQL, locally and on AWS, integrating data from a variety of imaging and edge‑sensing devices, including proprietary formats and calibration workflows.

Team leadership (35%)

  • Lead, mentor, and grow a team of data scientists and ML engineers. Foster a culture of accountability, curiosity, and continuous learning.

  • Drive work planning, prioritization, and resource allocation against short- and long‑term objectives.

  • Partner with Engineering, R&D, and Production teams to move models from lab to pilot to production scale.

  • Maintain documentation standards for experiments, data workflows, and models that support IP protection, compliance, and knowledge retention.

  • Stay current with the state of the art in ML for sensing and imaging, and bring relevant methods into the team.

Candidate Requirements
  • 4+ years in data science or applied ML research with a focus on computer vision or spectral/sensor data
  • Demonstrated technical leadership: tech lead, mentoring, or project ownership. Formal people management is not required, but you should want to grow in that direction.
  • Master's or Ph.D. in Computer Science, Electrical Engineering, Physics, or a related quantitative field or equivalent practical experience.
  • Deep experience with representation learning on high-dimensional sensors: autoencoders, self-supervised learning, dimensionality reduction, and sensor preprocessing/calibration.
  • Strong Python and SQL, with a track record of taking models from research prototype to production.
  • Hands‑on PyTorch experience (CNNs, Vision Transformers, and autoencoders) and computer vision libraries such as OpenCV. Practical experience with pytest, Docker, CI/CD pipelines, and experiment tracking (MLflow or similar)
  • Comfortable working in a dynamic environment with evolving requirements and continuous product development.
  • Effective communication skills with both technical and non‑technical stakeholders.
  • Legally entitled to work in Canada.
Optional
  • Hyperspectral imaging experience: spectral unmixing, band selection, sensor calibration, HSI data formats.
  • NIR/SWIR spectroscopy or chemometrics
  • Multi‑sensor fusion; edge/real‑time deployment (ONNX, TensorRT, embedded inference).
  • ML for industrial inspection, sorting, or manufacturing systems.

Sixone offers a stimulating work environment that promotes creativity, curiosity, and innovation. Join the team and contribute to our mission to transform the recycling industry and promote a sustainable future!

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