Data Scientist

Charger Logistics Inc.

Brampton

On-site

CAD 100,000 - 140,000

Full time

2 days ago
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Job summary

Charger Logistics Inc. is leveraging data science to optimize fleet operations across North America.

The role focuses on building production-grade ML models for route optimization, ETA, fuel efficiency, and maintenance, with real-time analytics on cloud platforms including Google Cloud, Kafka, and RisingWave. You will implement end-to-end data pipelines, integrate LLMs for conversational insights, and manage ML workflows with Vertex AI Tools, BigQuery, and Snowflake, collaborating across teams

Qualifications

  • Bachelor's degree in Data Analytics, Statistics, Mathematics, or Computer Science required.
  • 4+ years of hands-on data science and ML/AI delivering production-grade solutions.
  • Strong experience with Python and ML libraries (Pandas, NumPy, Scikit-learn, PyTorch, TensorFlow, XGBoost, LightGBM).
  • Advanced SQL with CTEs, window functions, and optimization.
  • Hands-on with Google Cloud (Vertex AI, BigQuery) and Snowflake; streaming with Kafka.
  • Experience with ETL/orchestration tools (Matillion, Airflow, Cloud Composer).
  • Knowledge of LLMs, geospatial/graph ML, GPS data, and RAG approaches.

Responsibilities

  • Design, develop, and deploy production-grade ML models for fleet optimization (route, ETA, fuel efficiency, capacity, maintenance, driver behavior).
  • Build anomaly detection, forecasting, and time-series models for vehicle health and demand fluctuations.
  • Develop batch and real-time ML pipelines with low-latency inference using Kafka, RisingWave, and cloud services.
  • Integrate LLMs for conversational analytics and retrieval-augmented generation (RAG).
  • Operate MLOps on Google Cloud (Vertex AI Pipelines, Feature Store, Model Registry) for training, deployment, monitoring, drift detection.
  • Build end-to-end data pipelines for analytics using BigQuery, Dataflow, Dataproc, Vertex AI, Cloud Functions, Pub/Sub, Cloud Composer.
  • Design scalable analytical data models in BigQuery, AlloyDB PostgreSQL, Snowflake; optimize SQL-based features and clustering.
  • Perform exploratory data analysis to uncover trends and insights; build dashboards for stakeholders.
  • Collaborate with cross-functional teams to translate business problems into data science solutions.
  • Support best practices in model development, experimentation, documentation, and data governance.

Skills

Python
Pandas
NumPy
Scikit-learn
PyTorch
TensorFlow
XGBoost
LightGBM
SQL
BigQuery
Cloud platforms
Kafka
RisingWave
MLOps

Education

Bachelor's degree in Data Analytics, Statistics, Mathematics, or Computer Science

Tools

Google Cloud
Vertex AI
BigQuery
Dataflow
Dataproc
Vertex AI Pipelines
Feature Store
Model Registry
Kafka
RisingWave
Snowflake
Airflow
Cloud Composer
Matillion
GCP services
Kag

Job description

Charger Logistics Inc. is a leading asset-based transportation company with over 20 years of experience delivering innovative logistics solutions. We have evolved into a world-class transport provider and continue to expand across North America.

We invest in our people, fostering an environment where learning, growth, and career advancement are encouraged. As an entrepreneurial organization, we value initiative, creativity, and forward-thinking strategies.

We are looking for a Data Scientist to develop, deploy, and scale machine learning (ML) and AI solutions for fleet analytics, logistics optimization, and operational decision-making. This is a hands-on role focusing on production-grade ML, real-time and streaming analytics, and AI-driven decision systems built on cloud platforms, including Google Cloud, Kafka, and RisingWave.

Responsibilities:

  • Design, develop, and deploy production-grade ML models for fleet optimization, including route optimization, ETA prediction, fuel efficiency, capacity planning, predictive maintenance, and driver behavior analysis.
  • Build anomaly detection, forecasting, and time-series models to monitor vehicle health, trip deviations, fuel theft, and demand fluctuations.
  • Develop batch and real-time ML pipelines with low-latency inference using Kafka, RisingWave, and cloud services.
  • Integrate large language models (OpenAI, Google MCP, Ollama, Hugging Face) for conversational analytics, automated insights, and retrieval-augmented generation (RAG) systems.
  • Operate MLOps workflows on Google Cloud using Vertex AI Pipelines, Feature Store, and Model Registry, supporting model training, deployment, monitoring, and drift detection.
  • Build and optimize end-to-end data pipelines for analytics and ML using BigQuery, Dataflow, Dataproc, Vertex AI, Cloud Functions, Pub/Sub, and Cloud Composer (Airflow).
  • Design scalable analytical data models in BigQuery, AlloyDB PostgreSQL, and Snowflake; optimize SQL-based feature engineering, data partitioning, and clustering.
  • Perform exploratory data analysis (EDA) to uncover trends, anomalies, and business insights.
  • Build dashboards and visualizations for stakeholders.
  • Collaborate with cross-functional teams to translate business problems into robust data science solutions.
  • Support best practices in model development, experimentation, documentation, and data governance.

Requirements

  • Bachelor's degree or equivalent in Data Analytics, Statistics, Mathematics, or Computer Science.
  • 4+ years of hands-on experience in data science and machine learning/AI, delivering production-grade ML solutions.
  • Strong experience in Python, including libraries such as Pandas, NumPy, Scikit-learn, PyTorch, TensorFlow, XGBoost, and LightGBM.
  • Advanced SQL skills, including CTEs, window functions, and query optimization.
  • Hands-on experience with Google Cloud, including Vertex AI (training, pipelines, deployment, feature store) and BigQuery (data modeling, performance tuning).
  • Experience with streaming platforms (Kafka, RisingWave) and Snowflake.
  • Knowledge of anomaly detection, time-series forecasting, optimization, and applied statistical modeling.
  • Experience deploying and monitoring ML models in production, including testing, and working with ETL/orchestration tools like Matillion, Airflow, and Cloud Composer.
  • Familiarity with advanced ML and AI techniques, including LLMs, geospatial or graph ML, computer vision, and GPS data analysis.
  • Solid understanding of knowledge retrieval patterns including RAG (Retrieval-Augmented Generation), with familiarity of emerging approaches like KAG (Knowledge-Augmented Generation) and CAG (Cache-Augmented Generation).
  • Experience with Azure, AWS, GCP, Databricks, or multi-cloud deployments is a plus.
  • Excellent communication and problem-solving skills, with the ability to thrive in fast-paced environments.
  • Certifications: Google Cloud Professional Data Engineer or Machine Learning Engineer is an asset; SnowPro® Advanced: Data Scientist certification preferred.
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