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Data engineer • vancouver bc
Cloud Data & AI Engineer
OSI DigitalVancouver, BC, CATechnology Lead - Azure Databricks - Data Engineer
ITL CanadaBurnaby, CAData Analyst
BA BlacktopNorth Vancouver, Colombie-BritanniqueData Scientist
DarkVisionNorth Vancouver, British Columbialululemon Senior Engineer I - Data Security Engineer
lululemonVancouver, British Columbia, CanadaDirector, Data Science and Data Engineering, GFT
Royal Bank of Canada>VANCOUVER, CanadaData Engineer
REW.caVancouver, BC, CAData Engineer
LGM Financial Services Inc.Vancouver, CA- New!
Data Cloud Platform Engineer (DBA)
BALLY’S INTRALOT SAVancouver, BC, CABusiness Intelligence Engineer, IT PnD Data and Analytics
Amazon Development Centre Canada ULCVancouver, British Columbia, CANdata administrator
TRIPLE EAGLE LOGISTICS (VANCOUVER) INC.Richmond, BC, CALead Data Engineer
Two CirclesVancouver, BC, CASenior Data & AI Platform Engineer
Orchestry Software IncVancouver, British Columbia, CanadaData Scientist
LOD Technologies Inc.Vancouver, BC, CAData Platform Engineer
BeatdappVancouver, British Columbia, CanadaSenior Data Engineer to build data solutions and support data modernization platform - 100% REMOTE (PST Hours).
S.i. SystemsVancouverData Consultant
XtremepushVancouver, British Columbia, CADirector, Data Science and Data Engineering, GFT
0000050007 Royal Bank of CanadaVANCOUVER, British Columbia, CanadaPrincipal Data Engineer
Vancouver Coastal HealthVancouver- Kitchener, ON (from $ 84,695 to $ 285,460 year)
- Iroquois Falls, ON (from $ 134,453 to $ 181,248 year)
- Prince George, BC (from $ 92,469 to $ 180,500 year)
- Thunder Bay, ON (from $ 120,000 to $ 177,500 year)
- Glace Bay, NS (from $ 120,000 to $ 177,500 year)
- Niagara Falls, ON (from $ 128,175 to $ 176,710 year)
- Spruce Grove, AB (from $ 153,483 to $ 173,684 year)
- Chatham-Kent, ON (from $ 121,003 to $ 173,490 year)
- Surrey, BC (from $ 112,450 to $ 172,519 year)
- Medicine Hat, AB (from $ 117,476 to $ 170,000 year)
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Cloud Data & AI Engineer
OSI DigitalVancouver, BC, CA- Full-time
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Job Title: Cloud Data & AI Engineer Employment: Full-time At OSI Digital Inc, we accelerate our client’s digital transformation journey by delivering modern data solutions, enabling them to unlock the full potential of their data with scalable cloud platforms, intelligent analytics, and AI-driven solutions.
With deep expertise across data engineering, cloud platforms, advanced analytics, and AI/ML, our teams bring both technical mastery and business acumen to every engagement.
We don’t just implement tools—we build scalable, future-ready solutions that drive measurable outcomes for our clients.
Role Summary: We are seeking a highly skilled and results-driven Modern Cloud Data and AI Engineer with a strong background in modern cloud data architecture, specifically on Snowflake, and hands-on experience in developing Data solutions in Power BI, implementing AI Solutions.
The ideal candidate combines strong data engineering, integration, and BI expertise with hands-on AI project execution, supporting OSI’s reputation for high-impact consulting in cloud and digital transformation spaces and will be a strong communicator, capable of implementing projects from the ground up.
Key Responsibilities : Lead the design, development, and implementation of highly scalable and secure data warehouse solutions on Snowflake, including schema design, data loading, performance tuning, and optimizing cloud costs.
Design and build robust, efficient data pipelines (ETL/ELT) using advanced data engineering techniques.
This includes hands-on experience in data integration via direct APIs (REST/SOAP) and working with various integration tools (e.g., Talend, stitch, Fivetran, or native cloud services).
Develop and implement high-impact visual analytics and semantic models in Power BI.
Apply advanced features such as DAX, Row-Level Security (RLS), and dashboard deployment pipelines.
Proficiency in Python/R, familiarity with ML frameworks (scikit-learn, TensorFlow, PyTorch), experience with MLOps concepts, and deploying models into a production environment on cloud platforms.
Develop and deploy AI/ML solutions using Python, Snowpark, or cloud-native ML services (AWS Sagemaker, Azure ML).
Exposure to LLM/GenAI projects (chatbot implementations, NLP, recommendation systems, anomaly detection) is highly desirable.
Implement and manage data solutions utilizing core services on at least one major cloud platform (AWS or Azure).
Demonstrate exceptional communication and articulation skills to engage with clients, gather requirements, and lead project delivery from ground up (inception to final deployment).
Required Qualifications: Minimum of 4 years of professional experience in data engineering, consulting, and solution delivery.
Bachelor’s degree in computer science, Engineering, or a related technical field.
A master’s degree in a relevant field is highly preferred.
Strong, hands-on experience in end-to-end Snowflake project implementation.
Any professional certifications in snowflake preferred.
Expertise in designing, building, and maintaining ELT/ETL pipelines and data workflows, with a solid understanding of data warehousing best practices.
Hands-on experience implementing dashboards in Power BI, including DAX and RLS.
Professional certifications in Power BI are preferred.
Proficiency in Python, with demonstrable experience deploying at least one AI/ML project (e.g., Snowpark, Databricks, SageMaker, Azure ML) including feature engineering, model deployment, and MLOps practices.
Experience with machine learning frameworks such as scikit-learn, TensorFlow, or PyTorch, and hands-on exposure to production deployments.
Familiarity with projects involving LLM/Generative AI (e.g., chatbots, NLP, recommendation systems, and anomaly detection).
Hands-on experience working with cloud platforms, specifically AWS or Azure.
Excellent verbal and written communication, presentation, and client-facing consulting skills, with proven track record of successfully leading projects from inception.
Preferred (Added Advantage) Qualifications: Experience with Tableau or other leading BI tools.
Working knowledge of Databricks (e.g., Spark, Delta Lake).
Experience or strong understanding of Data Science methodologies and statistical modeling.
Relevant industry certifications, including Power BI, Snowflake, Databricks and AWS/Azure Data/AI credentials.
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