#136209 - Data Engineer - HR Analytics & AI-Ready Data

Posted 9 Days Ago
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Hiring Remotely in Bogotá, Distrito Capital, COL
In-Office or Remote
Senior level
Enterprise Web • HR Tech • Professional Services • Software
The Role
Build and maintain secure, scalable data pipelines, warehouse models, datamarts, semantic layers, and governed analytical datasets for HR insights and AI-enabled data experiences. Develop integrations, data-quality testing, orchestration, documentation, and platform reliability processes using Snowflake, dbt, Python, Airflow, AWS, and BigQuery. Support secure access to sensitive data and maintain production pipeline uptime.
Summary Generated by Built In
Job Description

Summary

We are seeking an experienced Data Engineer to build and maintain secure, reliable, and scalable data pipelines, warehouse models, and analytical datasets supporting people insights. This role combines hands-on data engineering with data modeling, platform reliability, semantic-layer design, and governed access for both business intelligence tools and AI-enabled interfaces.

 

Enterprise experience strongly preferred.

 

Key Responsibilities

 

- Develop and maintain secure, efficient data pipelines using dbt, PySpark, and Python applications.

- Build extraction, transformation, and loading infrastructure using Python, dbt, Terraform, AWS Glue, Amazon EMR, and Amazon S3.

- Integrate data from APIs, cloud systems, Google Sheets, and other structured sources.

- Create and maintain Snowflake warehouse models, datamarts, and analytics-ready datasets.

- Develop automated data-quality tests and improve internal data-engineering processes.

- Monitor production pipelines and help maintain a 99.5% uptime objective.

- Design semantic views, ontology layers, business-friendly entities, relationships, and certified metrics over warehouse models.

- Build governed natural-language data experiences using Snowflake Cortex Analyst, Cortex Search, or equivalent LLM-native query layers.

- Configure secure Model Context Protocol connections or comparable interfaces between governed data sources and internal AI tooling.

- Document data models, pipelines, business logic, operational procedures, and technical decisions comprehensively.

Qualifications

Must-Have Skills

 

- 5+ years of relevant experience.

- Hands-on Snowflake experience, including data modeling, datamarts, and data warehouse design.

- Hands-on dbt experience for data transformations.

- Strong Python experience, including object-oriented programming and data scripting.

- Hands-on Airflow experience for pipeline orchestration.

- Experience integrating REST APIs and ingesting data from external sources.

- Hands-on Google BigQuery querying and optimization experience.

- Experience securely handling sensitive data at large scale.

- Experience with real-time or near-real-time data processing from APIs, Google Sheets, or comparable sources.

- Strong SQL skills, including highly optimized queries.

- Comprehensive technical documentation skills.

- Advanced English communication skills.

 

Nice-to-Have Skills

 

- Experience designing semantic layers or semantic models that provide business-object abstraction over dbt and warehouse models.

- Experience with Snowflake Cortex Analyst, Cortex Search, or an equivalent LLM-native query layer.

- Experience with Model Context Protocol or a similar tool-calling and context-exposure framework.

- Familiarity with prompt and context engineering for grounding AI agents in certified data sources.

Additional Information

Required Tools & Platforms

 

- Snowflake.

- dbt.

- Python and PySpark.

- Apache Airflow.

- Google BigQuery.

- SQL.

- REST APIs.

- Terraform.

- AWS Glue, Amazon EMR, and Amazon S3.

 

Location, Time & Engagement

 

- Candidates must be based in an eligible LATAM location.

- Full US Central Time coverage is required.

- This is a contract engagement at 40 hours per week.

- The anticipated engagement runs through March 31, 2027.

- This is not currently a contract-to-hire opportunity.

Skills Required

  • 5+ years of relevant experience
  • Hands-on Snowflake experience, including data modeling, datamarts, and data warehouse design
  • Hands-on dbt experience for data transformations
  • Strong Python experience, including object-oriented programming and data scripting
  • Hands-on Apache Airflow experience for pipeline orchestration
  • Experience integrating REST APIs and ingesting data from external sources
  • Hands-on Google BigQuery querying and optimization experience
  • Experience securely handling sensitive data at large scale
  • Experience with real-time or near-real-time data processing from APIs, Google Sheets, or comparable sources
  • Strong SQL skills, including highly optimized queries
  • Comprehensive technical documentation skills
  • Advanced English communication skills
  • Experience designing semantic layers or semantic models over dbt and warehouse models
  • Experience with Snowflake Cortex Analyst, Cortex Search, or an equivalent LLM-native query layer
  • Experience with Model Context Protocol or a similar tool-calling and context-exposure framework
  • Familiarity with prompt and context engineering for grounding AI agents in certified data sources
  • Based in an eligible LATAM location
  • Full US Central Time coverage
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The Company
283 Employees
Year Founded: 2025

What We Do

Lifted, an Upwork Company, is a B2B SaaS platform that helps enterprise organizations source, contract, manage, and pay contingent talent globally and compliantly. It supports multiple engagement models, including independent contractors, staff augmentation, and employer-of-record, while integrating with MSPs and VMSs to provide centralized visibility, spend control, and audit-ready compliance, delivering a white-labeled talent experience for hiring managers and contingent workforce programs.

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