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Principal Data Engineer, User Success (Agentic Experiences)

Toronto, ON, CAN

Pay
$120,000–176,000/year · BaseAnnual period assumed · Location-specific pay — pay source
Salary transparency Salary is one part of Autodesk’s competitive compensation package. For Canada based roles, we expect a starting base salary between $120,000 and $176,000. Offers are based on the candidate’s experience and geographic location, and may exceed this range. In addition to base salaries, our compensation package may include annual cash bonuses, commissions for sales roles, stock grants, and a comprehensive benefits package. Belonging We take pride in cultivating a culture of belonging where everyone can thrive. Learn more here: https://www.autodesk.com/company/global-belonging In-Person Onboarding and Identity Verification
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Work setup
Unconfirmed
Employment
Unconfirmed
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What you’ll work on

Full posting
  • Partner with AI/ML teams to operationalize:

  • Ensure data quality and observability meet the needs of AI-driven decision systems

  • Drive alignment on data standards, governance, and best practices

From the employer’s posting
Real-time and iterative feedback loops Partner with AI/ML teams to operationalize: Feature engineering and feature stores
RAG-based systems and evaluation pipelines Ensure data quality and observability meet the needs of AI-driven decision systems Guide build vs. buy decisions for data tooling and platforms
Influence technical direction without direct authority Drive alignment on data standards, governance, and best practices Communicate complex technical concepts to both technical and non-technical audiences

What you’ll bring

All qualifications

Core experience

  • 10+ years of experience in data engineering, data platform engineering, distributed systems, or related technical roles, including ownership of large-scale production data systems
  • Experience with streaming technologies (Kafka, Flink, Spark Streaming)
  • Experience designing and operating reliable ETL/ELT pipelines across batch and streaming workloads, including orchestration, validation, backfills, incremental processing, and data quality checks
  • Knowledge of analytics engineering and semantic layer tools (dbt, metrics stores)
  • Experience with modern data platforms, including Iceberg, Hive, Snowflake, Redshift, Athena, or equivalent technologies
  • Experience with data governance, lineage, and cataloging systems

Preferred experience

  • Experience with product telemetry, clickstream data, behavioral analytics, or experimentation platforms
  • Experience with ingestion, orchestration, and transformation tools such as Airflow, dbt, Fivetran, or similar
  • Experience partnering with product, design, research, analytics, and ML teams to create data products that directly inform user experiences or power intelligent product capabilities
  • Experience supporting LLM, RAG, agentic AI, or internal intelligence workflows in production or enterprise environments
Qualification wording
10+ years of experience in data engineering, data platform engineering, distributed systems, or related technical roles, including ownership of large-scale production data systems
Experience with streaming technologies (Kafka, Flink, Spark Streaming)
Experience designing and operating reliable ETL/ELT pipelines across batch and streaming workloads, including orchestration, validation, backfills, incremental processing, and data quality checks
Knowledge of analytics engineering and semantic layer tools (dbt, metrics stores)
Experience with modern data platforms, including Iceberg, Hive, Snowflake, Redshift, Athena, or equivalent technologies
Experience with data governance, lineage, and cataloging systems
Experience with product telemetry, clickstream data, behavioral analytics, or experimentation platforms
Experience with ingestion, orchestration, and transformation tools such as Airflow, dbt, Fivetran, or similar
Experience partnering with product, design, research, analytics, and ML teams to create data products that directly inform user experiences or power intelligent product capabilities
Experience supporting LLM, RAG, agentic AI, or internal intelligence workflows in production or enterprise environments

Tools in this posting

  • Python
  • SQL
  • AWS
  • dbt
  • Fivetran
  • Hive
  • Iceberg
  • Kafka
  • Redshift
  • S3
  • Snowflake
  • Spark
  • Airflow
  • PySpark
Source — Tool mentions in context
- 10+ years of experience in data engineering, data platform engineering, distributed systems, or related technical roles, including ownership of large-scale production data systems - Strong hands-on experience with Python, Spark, PySpark, advanced SQL, and scripting - Experience with:
- Experience with modern data platforms, including Iceberg, Hive, Snowflake, Redshift, Athena, or equivalent technologies - Hands-on experience with AWS services, including EMR, Glue, S3, IAM, Lambda, Step Functions, and related cloud-native infrastructure - Demonstrated ability to lead cross-functional technical initiatives, influence architecture, define engineering standards, and mentor engineers
- Experience with streaming technologies (Kafka, Flink, Spark Streaming) - Knowledge of analytics engineering and semantic layer tools (dbt, metrics stores) - Experience with data governance, lineage, and cataloging systems
- Experience with product telemetry, clickstream data, behavioral analytics, or experimentation platforms - Experience with ingestion, orchestration, and transformation tools such as Airflow, dbt, Fivetran, or similar - Experience partnering with product, design, research, analytics, and ML teams to create data products that directly inform user experiences or power intelligent product capabilities
- Experience designing and operating reliable ETL/ELT pipelines across batch and streaming workloads, including orchestration, validation, backfills, incremental processing, and data quality checks - Experience with modern data platforms, including Iceberg, Hive, Snowflake, Redshift, Athena, or equivalent technologies - Hands-on experience with AWS services, including EMR, Glue, S3, IAM, Lambda, Step Functions, and related cloud-native infrastructure
- Agent frameworks or orchestration systems - Experience with streaming technologies (Kafka, Flink, Spark Streaming) - Knowledge of analytics engineering and semantic layer tools (dbt, metrics stores)

About Autodesk

We help innovators turn their ideas into reality, transforming not only how things are made, but what can be made.

In the employer’s words · Read in context

Job description

View original posting ↗

Job Requisition ID #

26WD98052

Position Overview

At Autodesk, we do what no other company can: we help our customers design and make anything. The Experience Foundations team at Autodesk plays a critical role in designing the experiences that make that mission a reality, especially in this transformative moment where seamless digital experiences and AI-powered innovation will empower customers and teams to achieve meaningful outcomes faster.

The Principal Data Engineer will report to Director of Growth and Data Science in the Experience Foundations organization. This is a critical data science role for our agentic insights platform—we are evolving our data tools and platform to support AI-native experiences, enabling both humans and intelligent systems to better understand user behavior and business impact.

As a Principal Data Engineer, you will be driving the design of AI-ready data products that power analytics, machine learning, and emerging agentic experiences and insights and intelligence products.

This role requires a balance of deep technical expertise, architectural vision, and cross-functional leadership, influencing how data is structured, governed, and consumed across Autodesk.

Responsibilities

  • Architect and implement scale batch and streaming pipelines for large-scale product telemetry with low-latency, high-throughput data access

    • that support LLMs and agentic workflows

    • optimized for:

      • Retrieval (e.g., embeddings, vector search)

      • Contextual data access

      • Real-time and iterative feedback loops

  • Partner with AI/ML teams to operationalize:

    • Feature engineering and feature stores

    • RAG-based systems and evaluation pipelines

  • Ensure data quality and observability meet the needs of AI-driven decision systems

  • Guide build vs. buy decisions for data tooling and platforms

  • Enable analysts and product teams with trusted, well-modeled datasets

  • Partner with stakeholders to translate product questions into measurable data signals

  • Improve instrumentation strategy to ensure high-quality behavioral data

  • Support self-service analytics and AI-assisted exploration

  • Collaborate across Product, Engineering, Data Science, Research and Design

  • Influence technical direction without direct authority

  • Drive alignment on data standards, governance, and best practices

  • Communicate complex technical concepts to both technical and non-technical audiences

Minimum Qualifications

  • 10+ years of experience in data engineering, data platform engineering, distributed systems, or related technical roles, including ownership of large-scale production data systems

  • Strong hands-on experience with Python, Spark, PySpark, advanced SQL, and scripting

  • Experience with:

    • LLM ecosystems, embeddings, vector databases

    • Retrieval-augmented generation (RAG)

    • Agent frameworks or orchestration systems

  • Experience with streaming technologies (Kafka, Flink, Spark Streaming)

  • Knowledge of analytics engineering and semantic layer tools (dbt, metrics stores)

  • Experience with data governance, lineage, and cataloging systems

  • Exposure to product analytics and experimentation frameworks

  • Experience designing and operating reliable ETL/ELT pipelines across batch and streaming workloads, including orchestration, validation, backfills, incremental processing, and data quality checks

  • Experience with modern data platforms, including Iceberg, Hive, Snowflake, Redshift, Athena, or equivalent technologies

  • Hands-on experience with AWS services, including EMR, Glue, S3, IAM, Lambda, Step Functions, and related cloud-native infrastructure

  • Demonstrated ability to lead cross-functional technical initiatives, influence architecture, define engineering standards, and mentor engineers

  • Strong communication skills with technical and non-technical stakeholders.

Preferred Qualifications

  • Experience with product telemetry, clickstream data, behavioral analytics, or experimentation platforms

  • Experience with ingestion, orchestration, and transformation tools such as Airflow, dbt, Fivetran, or similar

  • Experience partnering with product, design, research, analytics, and ML teams to create data products that directly inform user experiences or power intelligent product capabilities

  • Experience supporting LLM, RAG, agentic AI, or internal intelligence workflows in production or enterprise environments

  • Track record of modernizing data infrastructure in environments with fragmented systems, evolving requirements, or limited standards

Learn More

About Autodesk

Welcome to Autodesk! Amazing things are created every day with our software – from the greenest buildings and cleanest cars to the smartest factories and biggest hit movies. We help innovators turn their ideas into reality, transforming not only how things are made, but what can be made.

We take great pride in our culture here at Autodesk – it’s at the core of everything we do. Our culture guides the way we work and treat each other, informs how we connect with customers and partners, and defines how we show up in the world.

When you’re an Autodesker, you can do meaningful work that helps build a better world designed and made for all. Ready to shape the world and your future? Join us!

Salary transparency

Salary is one part of Autodesk’s competitive compensation package. For Canada based roles, we expect a starting base salary between $120,000 and $176,000. Offers are based on the candidate’s experience and geographic location, and may exceed this range. In addition to base salaries, our compensation package may include annual cash bonuses, commissions for sales roles, stock grants, and a comprehensive benefits package.

Belonging
We take pride in cultivating a culture of belonging where everyone can thrive. Learn more here: https://www.autodesk.com/company/global-belonging


In-Person Onboarding and Identity Verification

This role may require in-person onboarding and/or in-person ID verification.

Are you an existing contractor or consultant with Autodesk?

Please search for open jobs and apply internally (not on this external site).

Your next step

  • Have your CV and examples of relevant work ready.
  • Check the listed location, eligibility and core experience before starting.

Complete your application on autodesk.wd1.myworkdayjobs.com. The employer’s form will show what is required.

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Source & posting history

View original posting ↗

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Pay
Salary transparency Salary is one part of Autodesk’s competitive compensation package. For Canada based roles, we expect a starting base salary between $120,000 and $176,000. Offers are based on the candidate’s experience and geographic location, and may exceed this range. In addition to base salaries, our compensation package may include annual cash bonuses, commissions for sales roles, stock grants, and a comprehensive benefits package. Belonging We take pride in cultivating a culture of belonging where everyone can thrive. Learn more here: https://www.autodesk.com/company/global-belonging In-Person Onboarding and Identity Verification
Location & working pattern

Toronto, ON, CAN

Working pattern and location restrictions need checking in the full posting.

Work authorization

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Status in our records
Active
First seen by us
Jun 10, 2026
Recorded sightings
196
Last seen by us
Oct 9, 2026

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