AI Data Engineer

Katapult Labs

Antioquia

Remote

COP 298,072,000 - 463,668,000

Full time

14 days+
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Job summary

Katapult Labs is seeking an AI Data Engineer to build and own data pipelines, integrate sources, and enable data-driven decisions for US partners. This fully remote role spans LATAM, with a focus on scalable data foundations and trusted data.

You will collaborate with product and business leaders, model data in Snowflake, and use AI agents to automate workflows while ensuring data quality and security.

Qualifications

  • Hands-on data engineering experience building production pipelines in real code (Python and SQL).
  • Strong Snowflake data modeling, performance tuning, and cost awareness.

Responsibilities

  • Design, build, and own ETL/ELT pipelines that bring data from multiple sources into Snowflake.
  • Model data in Snowflake for analytics and product use.
  • Build and maintain integrations across the stack and decide when to write custom code vs. connectors.
  • Collaborate with product and business leaders to turn questions into concrete data solutions.
  • Leverage AI tools and agents to speed up work and automate workflows.
  • Take end-to-end ownership: identify problems, propose solutions, ship them, and improve them.

Skills

Hands-on data engineering
Snowflake expertise
Airflow & dbt
AI agents
Business sense
English fluency
Startup experience

Job description

AI Data Engineer

Katapult Labs · Remote (LATAM) · Full-time

About Katapult

Katapult is an AI-first engineering studio connecting senior LATAM talent with startups and companies in the US. We're not a staff-augmentation shop: every person we put in front of a client represents Katapult, co-creates product, and owns the outcome directly, with no managers or leads acting as a layer in between.

The Opportunity

We're looking for a Data Engineer who builds, not just maintain. You'll work with one of our US startup partners to create the data foundation behind their product and business decisions. That means bringing scattered sources into one trusted place, keeping the data flowing reliably, and turning it into insights the team can act on.

This isn't a back-office pipelines role. You'll work side by side with product and business leaders. You'll need to understand what the company is trying to achieve and why each dataset matters. Then you'll use that context to decide what to build next.

What You'll Do
  • Design, build, and own ETL/ELT pipelines that bring data from multiple sources (APIs, SaaS tools, CRMs, transactional databases) into Snowflake.

  • Model data in Snowflake so it's clean, trustworthy, and easy to use for analytics and product.

  • Build and maintain integrations across the stack. You’ll decide when to use off-the-shelf connectors and when to write custom code.

  • Work directly with product and business leaders to turn vague questions into concrete data solutions.

  • Use AI tools and agents to speed up your own work and to automate manual workflows for the team.

  • Take ownership end to end: spot the problem, propose the solution, ship it, and keep improving it.

What We’re Looking For
  • Hands‑on data engineering experience. You've built production pipelines yourself, in real code (Python and SQL), not only through dashboards or notebooks.

  • Strong Snowflake experience, including data modeling, performance, and cost awareness.

  • Experience integrating multiple data sources and orchestrating pipelines (Airflow, dbt, Fivetran/Airbyte, or similar).

  • Agentic . Experience building AI agents or LLM-powered workflows on top of company data.

  • Business and product sense. You can talk with non‑technical stakeholders, understand the business model, and prioritize by impact.

  • Impeccable English, spoken and written. You’ll work directly with a US team daily.

  • Comfortable in an early‑stage, ambiguous environment where you’re a builder, not a ticket‑taker.

Nice to Have
  • Background in startups or a founder/co‑founder experience.

  • Familiarity with CI/CD, testing, and version control practices for data (Git, dbt tests, data quality checks).

  • Cloud experience (AWS, GCP, or Azure).

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