← CarreiraAI
Indeed
Remoto
Data Engineer
Cornerstone OnDemand · Flexible / Remote
Publicada em 28/07/2026
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We are seeking a talented Data Engineer with strong communication skills, passion for solving business problems with data and has domain knowledge in Finance, Human Resources, and Customer Success. You have empathy, curiosity and desire to improve and constantly learn. Should be hands-on with dbt, Snowflake, Airflow, Fivetran, and has a proven track record of driving the best practices and processes, building data models and ETL loads.In this role you will...• Design, build and maintain batch or real-time data pipelines in production.• Maintain and optimize the data infrastructure required for accurate extraction, transformation, and loading of data from a wide variety of data sources.• Develop ETL (extract, transform, load) processes to help extract and manipulate data from multiple sources.• Automate data workflows such as data ingestion, aggregation, and ETL processing.• Prepare raw data in Data Warehouses into a consumable dataset for both technical and non-technical stakeholders.• Partner with data scientists and functional leaders in sales, marketing, and product to deploy machine learning models in production.• Build, maintain, and deploy data products for analytics and data science teams on cloud platforms (e.g. AWS, Azure, GCP).• Ensure data accuracy, integrity, privacy, security, and compliance through quality control procedures.• Monitor data systems performance and implement optimization strategies.• Leverage data controls to maintain data privacy, security, compliance, and quality for allocated areas of ownership.You have what it takes if you have...• 3+ years of SQL skills and experience with relational databases and database design.• Experience working with cloud Data Warehouse solutions - Databricks, Apache Spark• Experience working with data ingestion tools such as Fivetran, stitch, or Matillion.• Working knowledge of Cloud-based solutions (e.g. AWS, Azure, GCP).• Experience building and deploying machine learning models in production.• Strong prof
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