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Summer Geospatial Data Science Intern Jobs in Toronto, ON

... data validation workflows * Support BIM governance initiatives and information management best practices The skills that set you apart Experience * Diploma or degree in Geomatics, Geospatial Sciences ...

... data validation workflows * Support BIM governance initiatives and information management best practices The skills that set you apart Experience * Diploma or degree in Geomatics, Geospatial Sciences ...

Ecopia has experience leveraging AI and geospatial data to create and maintain large-scale, highly ... The Role As a Business Development Intern, you will support our go to market efforts within the ...

Ecopia has experience leveraging AI and geospatial data to create and maintain large-scale, highly ... The Role As a Business Development Intern, you will support our go to market efforts within the ...

Collaborate with cross-functional teams to translate business problems into robust data science ... Familiarity with advanced ML and AI techniques, including LLMs, geospatial or graph ML, computer ...

New

Collaborate with cross-functional teams to translate business problems into robust data science ... Familiarity with advanced ML and AI techniques, including LLMs, geospatial or graph ML, computer ...

New

... summer months! 17 Paid Days Off (in addition to 13 Personal Days) This includes an extra day off ... Degree in a STEM discipline (Data Science, Statistics, Computer Science, or a related quantitative ...

New

Using Python for data science applications. * Working with relational databases such as PostgreSQL (additional database management experience preferred). * Working with geospatial data. * Working ...

... summer months! 17 Paid Days Off (in addition to 13 Personal Days) This includes an extra day off ... You will partner with Engineers, Product Managers, and Data Scientists to deliver high-quality data ...

Specialist, Data

Toronto, ON · Hybrid

CA$59K - CA$108K/yr

Familiarity with data science, machine learning, data visualization, and geospatial analytics. Salary Range : $59,000-$$108,600 Actual salary for the role may vary depending on work location of the ...

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Summer Geospatial Data Science Intern information

What is the difference between Summer Geospatial Data Science Intern vs Summer GIS Intern?

AspectSummer Geospatial Data Science InternSummer GIS Intern
Required CredentialsRelevant coursework in data science, GIS, or related fields; basic programming skillsGIS certifications or coursework; GIS software proficiency
Work EnvironmentData analysis, modeling, programming, and spatial data processingMapping, spatial data management, and GIS software application
Employer & Industry UsageTech companies, environmental agencies, research institutionsGovernment agencies, urban planning firms, environmental organizations

The Summer Geospatial Data Science Intern role focuses on analyzing spatial data using data science techniques and programming, while the Summer GIS Intern emphasizes mapping and managing spatial data with GIS software. Both positions require familiarity with GIS concepts, but the data science internship leans more toward programming and data analysis, whereas the GIS internship centers on mapping and spatial data management.

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Infographic showing various Summer Geospatial Data Science Intern job openings in Toronto, ON as of August 2026, with employment types broken down into 1% As Needed, 77% Full Time, 19% Part Time, and 3% Contract. Highlights an 86% Physical, 4% Hybrid, and 10% Remote job distribution.

$30/hr

Full-time, Internship

Posted 4 days ago


Job description

Role Objective:

The Data Development Intern plays a central role in building, maintaining, and modernizing the data infrastructure that powers Environics Analytics' core demographic and behavioural data products. The Data Development team works across a wide range of data sources, including Statistics Canada, IRCC, CRA, and third-party survey data, applying rigorous ETL, quality control, and modeling pipelines to produce market-ready outputs from national to small-area geographies.


You'll design and implement automated data pipelines in SQL and Python, support the migration of legacy workflows to modern architecture (including the team's move to Snowflake), and contribute to quality control systems that ensure the accuracy and consistency of our data products across vintages. This is a hands-on role with real ownership of production code, and strong performers will be well positioned for a full-time Data Engineer role on the team.


What You'll Do:

  • Design, build, and maintain automated data pipelines for ETL, modelling, and quality control across demographic data products.
  • Help migrate and refactor legacy workflows into SQL (T-SQL) and Python, improving scalability, maintainability, and version control.
  • Develop stored procedures, temp table-based workflows, and batch scripts to support large-scale data transformation.
  • Build automated QC checks and validation logic to catch anomalies and inter-vintage inconsistencies early in the pipeline.
  • Collaborate with data developers, Research Associates, and Technical Leads to translate data product methodology into reliable, repeatable code.
  • Present design approaches before building, validate results after, and participate in code reviews.
  • Use Azure DevOps and Git for version control and work item tracking; maintain documentation on SharePoint.
  • Investigate and prototype new tools, libraries, or pipeline architectures, including Snowflake-native approaches, that improve team efficiency or product quality.
  • Use AI coding tools (e.g., GitHub Copilot) as a core part of daily development to accelerate scripting, refactoring, and code review.
  • Apply AI-assisted approaches to documentation and QC, such as generating test cases, drafting validation logic, or summarizing pipeline behaviour.
  • Critically evaluate AI-generated code and output, verifying correctness and understanding the underlying SQL/Python well enough to own what ships.


What You'll Learn:

  • Practical, production experience in data engineering, automation, and AI-assisted development.
  • Exposure to large-scale demographic, financial, and behavioural datasets.
  • Insight into the full product development lifecycle at a leading data and analytics firm.
  • Modern cloud data warehousing (Snowflake) alongside traditional SQL Server workflows.
  • Agile development, version control, and code review practices.
  • Best practices in quality control and data integrity at scale.


Qualifications:

Education

Enrolled in or recently completed a graduate program (Master's) in Computer Science, Data Science, Statistics, Geography, Engineering, or a related quantitative field. Undergraduate candidates with strong relevant experience will also be considered.

Experience

  • Prior experience (coursework, research, co-op, or work) in data engineering, data analysis, or software development.
  • Comfort working with large-scale structured datasets (millions of rows across related tables).

Technical Skills

  • Strong SQL, including window functions and set-based transformation logic; T-SQL experience is a plus.
  • Proficiency in Python for data processing and automation, including pandas.
  • Experience building or contributing to multi-step ETL pipelines.
  • Comfort working in VS Code, Jupyter Notebook, and/or SQL Server Management Studio.
  • Experience with Git and a willingness to learn Azure DevOps.
  • Comfort using AI coding tools (e.g., GitHub Copilot) as part of your regular workflow.

Bonus Skills

  • Familiarity with Snowflake or other cloud data warehousing.
  • Familiarity with ETL processes and APIs.
  • Exposure to geospatial data or Canadian census geographies (e.g., DA, CT, CSD, CMA).
  • Familiarity with dashboards, data visualization, or statistical concepts (imputation, aggregation, index construction).
  • Exposure to workflow orchestration tools (e.g., Airflow) or distributed computing (e.g., Dask).

Personal Attributes

  • Strong problem-solving skills and eagerness to learn; comfortable identifying root causes and proposing systematic fixes.
  • Detail-oriented, with good documentation and communication habits.
  • Collaborative and open to feedback; comfortable working in a multidisciplinary team of researchers and data professionals.
  • Able to clearly communicate technical findings to both technical and non-technical stakeholders.


About Environics Analytics

Environics Analytics (EA) is a marketing services company that specializes in geodemographic-based segmentation, site evaluation modelling, and custom analytics.

EA is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees. If you require any accommodation to participate in the hiring process, please note the request in your application. We welcome people of all abilities.