Job Requisition ID #
26WD100084Position Overview
We are seeking an experienced Senior Data Engineer with 7+ years of expertise in designing, building, and optimizing scalable data platforms and pipelines. In this role, you will architect and develop robust data solutions that enable analytics, machine learning, and business intelligence across the organization.
You will collaborate closely with Data Science, Machine Learning Engineering, Platform Engineering, Product, Analytics, and business stakeholders to build reliable, high-performance data ecosystems that deliver trusted, actionable insights. This role requires strong technical leadership, hands-on engineering expertise, and the ability to influence data architecture and engineering best practices.
Our culture emphasizes collaboration, innovation, continuous learning, and engineering excellence. We encourage ownership, knowledge sharing, and solving complex technical challenges while mentoring fellow engineers.
Key Responsibilities
Design, develop, and maintain scalable, resilient, and high-performance data pipelines supporting batch and real-time workloads
Build and optimize ETL/ELT pipelines for ingesting, transforming, validating, and serving large-scale datasets
Design and implement robust data models, schemas, and storage strategies to ensure data quality, integrity, and accessibility
Develop and optimize distributed data processing solutions using Spark, PySpark, SQL, and cloud-native technologies
Integrate data from multiple enterprise systems while maintaining consistency, governance, and reliability
Build and manage scalable data platforms using modern cloud services and data lake technologies
Optimize database, warehouse, and pipeline performance for large-scale analytical workloads
Implement monitoring, alerting, automated testing, and data quality validation across pipelines
Establish and enforce data governance, security, compliance, and engineering best practices
Partner with Product, Analytics, Data Science, Machine Learning, and Engineering teams to translate business requirements into scalable data solutions
Enable self-service analytics by delivering trusted, well-modeled datasets
Contribute to the technical roadmap by driving architecture discussions, defining engineering standards, and promoting reusable data platform components
Mentor junior engineers through code reviews, technical guidance, and best practice adoption
Maintain comprehensive technical documentation covering architecture, data models, workflows, and operational processes
Minimum Qualifications
Bachelor's degree in computer science, Information Technology, Engineering, or a related field (or equivalent practical experience)
7+ years of professional experience in Data Engineering, Data Platform Engineering, or Distributed Data Systems
Strong hands-on expertise in:
Python
Spark / PySpark
Advanced SQL
Shell scripting
Strong understanding of relational databases such as PostgreSQL and MySQL
Experience working with NoSQL databases including MongoDB, Cassandra, DynamoDB, or equivalent
Solid understanding of data modeling, data architecture, and warehouse design principles
Experience designing and operating scalable ETL/ELT pipelines across batch and streaming environments
Hands-on experience with modern data technologies such as:
Apache Kafka
Apache Flink
Apache Iceberg
Hive
Parquet
Experience using workflow orchestration platforms such as Apache Airflow
Strong experience with cloud platforms, preferably AWS, including:
EMR
Glue
S3
IAM
Lambda
Step Functions
Athena
Redshift
Experience with modern data warehouse platforms such as Snowflake, Amazon Redshift, or Google BigQuery
Experience implementing CI/CD pipelines, version control using Git, and infrastructure automation
Experience implementing data validation, monitoring, incremental processing, backfills, reconciliation, and operational support for production pipelines
Proven ability to lead technical initiatives, influence architecture decisions, establish engineering standards, and mentor engineering teams
Preferred Qualifications
Experience with modern data transformation and ingestion tools such as dbt, Fivetran, Airbyte, or similar
Experience building enterprise-scale data platforms supporting analytics, AI, and machine learning workloads
Experience collaborating with Product Management, Design, Research, Analytics, and Machine Learning teams to build data products
Familiarity with machine learning workflows, feature engineering, and MLOps concepts
Experience in customer analytics, personalization, recommendation systems, or digital optimization
Knowledge of real-time streaming architectures and event-driven data processing
Experience working with Data Lakehouse architectures and open table formats
Strong understanding of data governance, metadata management, lineage, and data catalog solutions
Excellent communication, stakeholder management, and cross-functional collaboration skills
Passion for continuous improvement, engineering excellence, and mentoring high-performing teams
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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. Offers are based on the candidate’s experience and geographic location. 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
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