The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows. Role Overview The Senior Analyst ...
... data and analytical techniques to guide business decisions with primary focus on the health of the ... Experience working with AI models and demonstrated ability with AI projects in the past or as ...
... data and analytical techniques to guide business decisions with primary focus on the health of the ... Experience working with AI models and demonstrated ability with AI projects in the past or as ...
... data and analytical techniques to guide business decisions with primary focus on the health of the ... Experience working with AI models and demonstrated ability with AI projects in the past or as ...
... data and analytical techniques to guide business decisions with primary focus on the health of the ... Experience working with AI models and demonstrated ability with AI projects in the past or as ...
Build proficiency with emerging AI tools and apply them to improve team efficiency * Contribute as a key resource on analytics and operations solutions across the team * Analyze and interpret data to ...
Build proficiency with emerging AI tools and apply them to improve team efficiency * Contribute as a key resource on analytics and operations solutions across the team * Analyze and interpret data to ...
In this pivotal role, you will bridge stakeholders, data scientists, and engineering teams by ... Analyst, with a minimum of 2 years in a Senior BA or Product Owner role specifically within AI ...
In this pivotal role, you will bridge stakeholders, data scientists, and engineering teams by ... Analyst, with a minimum of 2 years in a Senior BA or Product Owner role specifically within AI ...
Analyze operational feedback and operating data from DIT and SONO systems. * Produce relevant ... We use AI-enabled tools in our recruitment platform (iCIMS) for tasks like resume parsing and ...
Analyze operational feedback and operating data from DIT and SONO systems. * Produce relevant ... We use AI-enabled tools in our recruitment platform (iCIMS) for tasks like resume parsing and ...
In this pivotal role, you will bridge stakeholders, data scientists, and engineering teams by ... Analyst, with a minimum of 2 years in a Senior BA or Product Owner role specifically within AI ...
In this pivotal role, you will bridge stakeholders, data scientists, and engineering teams by ... Analyst, with a minimum of 2 years in a Senior BA or Product Owner role specifically within AI ...
Oversee the implementation of data platforms, data pipelines, reporting and analytics solutions, AI-enabled capabilities, automation initiatives, integrations, APIs, and operational data products.
Oversee the implementation of data platforms, data pipelines, reporting and analytics solutions, AI-enabled capabilities, automation initiatives, integrations, APIs, and operational data products.
Oversee the implementation of data platforms, data pipelines, reporting and analytics solutions, AI-enabled capabilities, automation initiatives, integrations, APIs, and operational data products.
Oversee the implementation of data platforms, data pipelines, reporting and analytics solutions, AI-enabled capabilities, automation initiatives, integrations, APIs, and operational data products.
Analytics & AI Developer
Montreal, QC ยท On-site
You'll be part of our dynamic Data & Analytics Office, a globally distributed, high-impact team ... Applied AI Builders: You're fluent in prompt and context engineering, and you're energized by ...
Analytics & AI Developer
Montreal, QC ยท On-site
You'll be part of our dynamic Data & Analytics Office, a globally distributed, high-impact team ... Applied AI Builders: You're fluent in prompt and context engineering, and you're energized by ...
Analyze data across Finance, Inventory, Operations, and other business areas to identify risks ... Identify AI opportunities: Help business teams frame practical AI opportunities such as forecasting ...
Analyze data across Finance, Inventory, Operations, and other business areas to identify risks ... Identify AI opportunities: Help business teams frame practical AI opportunities such as forecasting ...
You will own the data layer behind our core acquisition, retention, churn, revenue, and unit ... You flag issues before being asked to fix them and use AI and tooling thoughtfully without ...
Quick apply
You will own the data layer behind our core acquisition, retention, churn, revenue, and unit ... You flag issues before being asked to fix them and use AI and tooling thoughtfully without ...
Analyst
Montreal, QC ยท On-site
Proficiency in Microsoft Excel and familiarity with data analysis and AI tools (e.g., ChatGPT, Claude). * Familiarity with Bloomberg terminal, Yahoo Finance, Benzinga, or similar financial tools (an ...
Quick apply
Analyst
Montreal, QC ยท On-site
Proficiency in Microsoft Excel and familiarity with data analysis and AI tools (e.g., ChatGPT, Claude). * Familiarity with Bloomberg terminal, Yahoo Finance, Benzinga, or similar financial tools (an ...
Support digital transformation, automation, and AI initiatives to improve operational efficiency ... Minimum 5 years of experience in data analytics, digital transformation, business intelligence ...
Support digital transformation, automation, and AI initiatives to improve operational efficiency ... Minimum 5 years of experience in data analytics, digital transformation, business intelligence ...
Sr. Manager, AI, Innovation & Operation
Montreal, QC ยท On-site +1
Lead development and execution of analytics, AI, and data strategy aligned to enterprise priorities. * Manage analytics leaders and teams delivering forecasting, performance insights, machine ...
Sr. Manager, AI, Innovation & Operation
Montreal, QC ยท On-site +1
Lead development and execution of analytics, AI, and data strategy aligned to enterprise priorities. * Manage analytics leaders and teams delivering forecasting, performance insights, machine ...
Sr. Manager, AI, Innovation & Operation
Montreal, QC ยท On-site +1
Lead development and execution of analytics, AI, and data strategy aligned to enterprise priorities. * Manage analytics leaders and teams delivering forecasting, performance insights, machine ...
Sr. Manager, AI, Innovation & Operation
Montreal, QC ยท On-site +1
Lead development and execution of analytics, AI, and data strategy aligned to enterprise priorities. * Manage analytics leaders and teams delivering forecasting, performance insights, machine ...
... data-driven decision-making. * Understanding of business process mapping and requirements ... AI Analyst Requisition ID: 13287
... data-driven decision-making. * Understanding of business process mapping and requirements ... AI Analyst Requisition ID: 13287
AI Analyst
Montreal, QC ยท On-site
... data-driven decision-making. * Understanding of business process mapping and requirements ... AI Analyst Requisition ID: 13287
AI Analyst
Montreal, QC ยท On-site
... data-driven decision-making. * Understanding of business process mapping and requirements ... AI Analyst Requisition ID: 13287
Data Analyst Ai information
See Quebec salary details
$12.02 - $18.03
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$27.32 is the 25th percentile. Wages below this are outliers.
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What is the difference between Data Analyst Ai vs Data Scientist?
| Aspect | Data Analyst Ai | Data Scientist |
|---|---|---|
| Required Credentials | Bachelor's in Data Science, Analytics, or related field; certifications like Microsoft Certified Data Analyst | Bachelor's or Master's in Data Science, Statistics, or related; advanced certifications often preferred |
| Work Environment | Business settings, focusing on data reporting and visualization | Research and development, modeling, and complex data analysis |
| Employer & Industry Usage | Corporate, finance, marketing, healthcare | Tech companies, research institutions, finance, healthcare |
| Common Search & Comparison | Often compared for entry to mid-level roles in data analysis | More advanced, requiring deeper statistical and machine learning skills |
Data Analyst Ai and Data Scientist roles share overlapping skills but differ mainly in complexity and scope. Data Analysts Ai focus on interpreting data and creating reports, while Data Scientists develop models and algorithms for predictive analytics. Understanding these differences helps in career planning and job targeting.
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Full-time
Retirement, PTO
Posted 15 days ago
Job description
Build the future with us
Data Science Team Overview
The Data Science function within iA Global Asset Management (iAGAM) is a key driver of strategic transformation across Investments, contributing to the organization's long-term vision and scalable systems and analytics objectives. The team works closely with Front Office investment teams to modernize analytical workflows, enable cloud-native solutions, and accelerate the adoption of advanced analytics and AI capabilities.
Within this mandate, Core Analytics focuses on delivering trusted analytical data products, scalable analytics solutions, and standardized investment datasets that enable consistent decision-making across investment teams. The team helps modernize the data and analytics foundation that powers reporting, quantitative analysis, portfolio insights, and AI-enabled investment workflows.
Role Overview
The Senior Analyst, Quantitative Data science, plays a central role in developing and scaling analytical data products used across Investments. This role combines financial domain understanding, modern data engineering, and analytics product development to transform complex investment data into trusted, reusable, and consumable assets.
As a Quantitative Data Engineer, you will partner directly with investment teams to understand analytical requirements, engineer scalable solutions, and deliver end-to-end products that support investment decision-making. You will work across the full lifecycle, from data sourcing and transformation through visualization, operationalization, and continuous improvement.
You will contribute to the modernization of the investment data ecosystem by developing cloud-native data solutions, supporting advanced visualization experiences, and helping prepare analytical assets for AI-enabled use cases. The role combines hands-on technical delivery with product ownership, business engagement, and a strong focus on reliability and long-term supportability.
This is a hands-on role for someone who enjoys building high-quality data and analytics solutions, working close to investment decision-making, and translating financial workflows into scalable analytical products. While the role requires credible financial and quantitative literacy, it is not intended to be a Front Office quant research role.
What you'll accomplish with us
Investment Data Products & Analytics
Partner with investment teams such as Portfolio Management, Asset Allocation, Trading, Performance, Risk, Research, and other investment groups to:
Develop and maintain analytical data products that support investment workflows.
Translate financial and analytical requirements into scalable data solutions.
Manage key quantitative and financial datasets, including performance, attribution, time-series, holdings, positions, exposures, and aggregated analytics.
Ensure critical investment datasets are accurate, validated, timely, and well-governed.
Support modernization of reporting and analytical processes across Investments.
Improve consistency and standardization of analytical outputs across teams.
Identify opportunities to automate manual processes and improve data reliability, timeliness, and quality.
Enable trusted, reusable datasets that support reporting, research, visualization, and AI initiatives.
End-to-End Analytics Product Ownership
Own the lifecycle of analytical products from data ingestion and transformation through delivery and ongoing evolution.
Collaborate with stakeholders to define requirements, priorities, operating expectations, and success measures.
Design scalable data models and transformation pipelines that support multiple consumers and downstream use cases.
Ensure analytical products are maintainable, well-documented, observable, and operationally supportable.
Continuously improve reliability, usability, performance, and business value of analytical products.
Apply an experimentation-driven mindset to incorporate innovation in data engineering and financial analytics delivery.
Balance short-term delivery needs with long-term sustainability, standardization, and reuse.
Visualization & Business Enablement
Develop high-impact analytical experiences using Power BI and modern application frameworks such as Streamlit.
Design intuitive interfaces that help investment teams explore, monitor, and consume analytical insights.
Support self-service analytics through standardized, trusted, and well-documented data assets.
Ensure visual outputs are accurate, validated, and aligned with governed datasets and business definitions.
Collaborate with stakeholders to improve adoption, usability, and decision support across analytical products.
Data Engineering & Platform Contributions
Develop cloud-native analytical data solutions using Google Cloud Platform, including BigQuery, Cloud Storage, and dbt-based transformation frameworks.
Build and maintain ETL/ELT pipelines that support critical investment processes and recurring analytical workflows.
Use Docker, GitHub-based development workflows, CI/CD concepts, and orchestration frameworks such as Prefect, Dagster, or Airflow to automate and scale pipelines.
Implement data quality controls, reconciliation processes, monitoring capabilities, and operational runbooks.
Contribute reusable data engineering and analytics engineering components, dbt models, standards, templates, and best practices across Core Analytics.
Improve orchestration, observability, troubleshooting, and operational support processes.
Support modernization initiatives related to analytics platform capabilities, semantic layers, and data architecture.
Help prepare analytical datasets and products for AI-enabled workflows and future advanced analytics use cases.
Examples of Work You May Contribute To
Performance and attribution analytics platforms.
Portfolio holdings, positions, exposure, and time-series data products.
Standardized investment datasets used across multiple teams.
Standardized dbt transformations and curated data marts supporting performance, attribution, holdings, positions, and market data domains.
Modernized Power BI reporting solutions and semantic models.
Streamlit-based analytical applications for investment users.
Data quality monitoring, validation, and reconciliation frameworks.
Reusable pipeline and dbt model templates for ingestion, transformation, validation, scheduling, and monitoring.
Development of reusable dbt models, data marts, tests, documentation, lineage, and semantic-layer components.
AI-ready analytical datasets and semantic layers.
Data products supporting research, reporting, forecasting, portfolio analytics, and investment insights.
What could accelerate your success in this role
We're looking for someone who:
Strong Python development skills and experience building modern data solutions.
Strong understanding of data engineering principles, analytics engineering, data modeling, and best practices.
Experience building scalable ETL/ELT pipelines, analytical data models, and analytics engineering solutions using tools such as dbt.
Experience implementing transformation logic, testing, documentation, lineage, and reusable modeling practices using dbt or comparable analytics engineering frameworks.
Experience with cloud-native platforms such as Google Cloud Platform and BigQuery.
Experience with orchestration frameworks such as Prefect, Dagster, or Airflow.
Familiarity with GitHub, code reviews, CI/CD concepts, Docker, and modern software development practices.
Experience building Power BI solutions, semantic models, and analytical applications.
Understanding of data quality, validation, reconciliation, monitoring, and governance patterns.
Ability to diagnose issues spanning data dependencies, transformation logic, orchestration, and reporting layers.
Familiarity with AI-enabled analytics workflows, enterprise AI capabilities, or AI-ready data product design is an asset.
Financial & Domain Expertise
Solid understanding of investment and financial analytics concepts such as:
Portfolio management workflows.
Performance and attribution analytics.
Holdings, positions, exposures, and reference data.
Market data and time-series analytics.
Risk and exposure analysis.
Financial reporting and compliance processes.
Ability to:
Understand investment workflows and analytical requirements.
Collaborate effectively with portfolio managers, analysts, quantitative teams, and data engineering partners.
Translate business and financial requirements into scalable analytical solutions.
Balance technical excellence with practical investment and operational needs.
Experience working with financial datasets or investment analytics is highly desirable. CFA or other financial designations are considered assets
High ownership and accountability.
Strong collaboration skills across business, analytics, data engineering, and platform teams.
Product-oriented mindset focused on business outcomes, usability, maintainability, and reuse.
Ability to operate effectively in ambiguous environments and drive initiatives to completion.
Strong problem-solving, analytical thinking, and debugging skills.
Curiosity, continuous learning mindset, and interest in applying technology to investment data and processes.
Strong communication skills with both technical and non-technical audiences.
Ability to balance short-term delivery requirements with long-term data and platform sustainability.
Focus on quality, reliability, supportability, and continuous improvement.
Education & Experience
Undergraduate or master's degree in Computer Science, Engineering, Mathematics, Finance, Financial Engineering, or a related field preferred.
5+ years of relevant experience for intermediate candidates; 8+ years for senior candidates.
Experience working at the intersection of finance, analytics, data engineering, and technology.
Experience building data products, analytical solutions, modern reporting capabilities, or production-grade data pipelines.
Experience supporting investment workflows, financial analytics, or quantitative processes is an asset.
Demonstrated ability to deliver and support production-grade data and analytics solutions.
CFA, CQF, FRM, or other quantitative or financial designation is considered an asset.
Nice-to-Have Qualifications
Experience working directly with Front Office or investment teams.
Prior exposure to portfolio management, trading, performance, attribution, risk, or investment reporting environments.
Experience designing analytical data products, dbt models, semantic layers, or reusable reporting datasets.
Experience supporting internal analytics platforms, shared data services, or self-service analytics ecosystems.
Familiarity with modern orchestration, containerization, automation, and observability frameworks.
Exposure to cloud-native architectures and scalable analytical application development.
Experience contributing to data governance, data quality automation, or analytical operating standards.
Experience integrating AI capabilities into analytics workflows with appropriate validation, controls, and monitoring.
Advanced proficiency in French, as the candidate will be required to communicate daily with English- and French-speaking clients and partners across Canada via email and phone calls.
Why you'll love working with us?
A work environment where learning and development merge with a collective pursuit of excellence;
A healthy, safe, fair, and inclusive environment where potential can be freely expressed and developed;
The opportunity to work in a hybrid environment, supported by flexibility and access to inspiring and innovative workspaces;
Competitive benefits: Flexible group insurance, competitive pension plan, stock purchase plan, vacation and wellness/personal development days, telemedicine, employee and family assistance program, ergonomic furniture program, performance bonus, discounts on iA products, and much more!
Apply now and get ahead of your career, where your talent really belongs!
Still unsure about applying?
At iA, we believe in potential and value diverse experiences. If this role inspires you, go ahead and apply - your place might be with us, and we want to get to know you!
The typical hiring range for this position is between 70,000$ and 110,000$ CAD per year; the base salary offered may vary depending on knowledge, skills, years of experience, and internal equity related to the role. At iA, we are committed to offering a fair, equitable, and market-based compensation structure. Our market data is updated annually to reflect the most current market conditions.
Location(s)Quebec / 1080, Grande Allee WestOther Possible Location(s)Montreal / 1981 McGill College AvenueToronto / 26 Wellington Street EastCompanyIndustrial Alliance Investment Management Inc.Posting End Date2026-08-18Company Overview
iA Financial Group* is the strength of a company with a human side, with its over 8,000 employees. Together, we have earned the trust of our more than four million clients and 25,000 advisors who have chos...