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Data Integration Remote Jobs in Toronto, ON (NOW HIRING)

25-053 Data Architect

Pickering, ON · On-site +1

$85 - $100/hr

... remote) Job Overview JOB FUNCTION As a Data Architect you will be responsible for leading the Azure ... integrated, business-centric single source of truth for business intelligence, reporting, and ...

This role is remote-friendly within North America. For those who prefer in-office or hybrid work ... Experience integrating data security controls with identity, endpoint, and network security domains

AI/ML Engineer - Remote

Toronto, ON · Remote

$200 - $350/hr

Build robust ETL and data pipelines , metadata catalogs, and ontologies for AI training and ... Develop and maintain REST APIs and SDK integrations . * Collaborate with product, security, and ...

Build robust ETL and data pipelines , metadata catalogs, and ontologies for AI training and ... Develop and maintain REST APIs and SDK integrations . * Collaborate with product, security, and ...

Architect comprehensive data solutions integrating multiple Azure services, AI capabilities, and ... Remote -Toronto, ON Opening Type: New Role If this resonates with you, we encourage you to apply ...

Fully Remote Employment Type: Contractor Vacancy Status: New RESPONSIBILITIES * Collaborate with ... Become the subject matter expert for a key business domain and its integration with the ...

Showing results 41-60

Data Integration Remote information

What is the difference between Data Integration Remote vs Data Analyst Remote?

AspectData Integration RemoteData Analyst Remote
Required SkillsData mapping, ETL tools, database managementData visualization, statistical analysis, SQL
CertificationsETL, data management certificationsGoogle Data Analytics, Microsoft Excel certifications
Work EnvironmentPrimarily technical, working with databases and data pipelinesAnalytical, reporting-focused, using visualization tools
Industry UsageData engineering, integration projectsBusiness intelligence, reporting, insights

While both roles involve working with data remotely, Data Integration Remote focuses on connecting and managing data sources through ETL processes and database management. Data Analyst Remote emphasizes analyzing data, creating reports, and visualizations to support business decisions. Understanding these differences helps job seekers target roles aligned with their skills and career goals.

What are popular job titles related to Data Integration Remote jobs in Toronto, ON?

For Data Integration Remote jobs in Toronto, ON, the most frequently searched job titles are:

What job categories do people searching Data Integration Remote jobs in Toronto, ON look for?

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Infographic showing various Data Integration Remote job openings in Toronto, ON as of August 2026, with employment types broken down into 100% Full Time. Highlights an 100% Remote job distribution.

25-053 Data Architect

Morson Talent

Pickering, ON • On-site, Remote

$85 - $100/hr

Full-time

Re-posted 5 days ago


Job description

Job Description 25-053 Data Architect Resume Due Date: Monday, April 14, 2025 (5:00PM EST) Number of Vacancies: 1 Level: MP6 Hourly Rate: $85 - $100/hour Duration: 12 Months Hours of work: 35 Location: 889 Brock Road, Pickering (Hybrid - 4 days remote) Job Overview JOB FUNCTION As a Data Architect you will be responsible for leading the Azure architecture. design and delivery of data models and data products which enable innovative, customer-centric digital experiences. You will be working as part of a cross-discipline agile team who helps each other solve problems across all business areas.

You will be a thought leader and subject matter expert on data lake & data warehousing and modeling activities for the team and use your influence to ensure that the team produces best-in class data solutions that leverage repeatable, maintainable, and well-documented design patterns. You will employ best practice in development, security, accessibility and design to achieve the highest quality of service for our customers. JOB DUTIES Lead the architecture.

design and oversee implementation of modular and scalable data ELT/ETL pipelines and data infrastructure on Azure and Databricks leveraging the wide range of data sources across the organization Design curated common data models that offer an integrated, business-centric single source of truth for business intelligence, reporting, and downstream system use Work closely with infrastructure and cyber teams to ensure data is secure in transit and at rest Create, guide and enforce code templates for delivery of data pipelines and transformations for structured, semi-structured and unstructured data sets Develop modeling guidelines that ensure model extensibility and reuse by employing industry standard disciplines for building facts, dimensions, bridge, aggregates, slowly changing dimensions and other dimensional and fact optimizations Establish standards database system fields, including primary and natural key combinations that optimize join performance in a multi-domain. multiple subject area physical (structured zone) and semantic model (curated zone) Ensure model extensibility by employing industry standard disciplines for building facts, dimensions, bridge, aggregates, slowly changing dimensions and other dimensional and fact optimizations Transform data and map to more valuable and understandable semantic layer sets for consumption, transitioning from system centric language to business-centric language Collaborate with business analysts, data scientists, data engineers, data analysts and solution architects to develop data pipelines to feed our data marketplace Introduce new technologies to the environment through research and POCs. and prepare POC code designs that can be implemented and productionized by developers Work with tools in the Microsoft Stack; Azure Data Factory, Azure Data Lake, Azure SQL Databases, Azure Data Warehouse, Azure Synapse Analytics Services, Azure Databricks, Microsoft Purview, and Power Bl Work within the agile SCRUM work management framework in delivery of products and services, including contributing to feature & user story backlog item development, and utilizing related Kanban/SCRUM toolsets Document as-built architecture and designs within the product description Design data solutions that enable batch, near-real-time, event-driven, and/or streaming approaches depending on business requirements Design & advise on orchestration of data pipeline execution to ensure data products meet customer latency expectations, dependencies are managed, and datasets are as up-to-date as possible, with minimal disruption to end-customer use Ensure that designs are implemented with proper attention to data security, access management.

and data cataloging requirements Approve pull requests related to production deployments Demonstrate solutions to business customers to ensure customer acceptance and solicit feedback to drive iterative improvements Assist in troubleshooting issues for datasets produced by the team (Tier 3 support), on an as-required basis Guide data modelers, business analysts and data scientists in the build of models optimized for KPI delivery, actionable feedback/writeback to operational systems and enhancing the predictability of machine learning models and experiments Develop Bicep or Terraform templates to manage Azure Infra as code Perform hands on data engineering work to build data ingestion and data transformation pipelines Qualifications EDUCATION Requires an extensive knowledge in designing a data model to solve a business problem, specifying a data pipeline design pattern to bring data into a data warehouse, optimizing data structures to achieve required performance, designing low-latency and/or event-driven patterns of data processing, creation of a common data model to support current and future business needs. This knowledge is considered to be normally acquired through the completion of a four year University education in computer science. computer/software engineering or other relevant programs within data engineering, data analysis, artificial intelligence, or machine learning.

EXPERIENCE Experience guiding data lake ingestion and data modeling projects in the Azure cloud environment; experience in modeling relational and in-memory models with star/snowflake schemas; experience with designing and implementing event-driven (pub/sub), near-real-time, or streaming data solutions, involving structured, semi-structured and unstructured data across various platforms and. A period of over 6 years and up to and including 8 years in data modeling, data warehouse design, and data solution architecture in a Big Data environment is considered necessary to gain this experience.