Назад
4 дня назад

Data Engineer / Analytics Engineer (AI)

Формат работы
remote (Global)
Тип работы
fulltime
Грейд
senior
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TL;DR
Data Engineer / Analytics Engineer (AI) (dbt/Snowflake/BigQuery): Building and owning reliable data pipelines, dbt models, data marts, and quality systems for mobile analytics with an accent on data architecture, semantic modeling, and production reliability. Focus on preparing the data layer for an AI analytics agent, designing read-only query interfaces, and solving cost, speed, monitoring, and incident-response challenges.

Position

Data Engineer / Analytics Engineer

Company

Severex

Company website

https://severex.io

Seniority

Senior

Employment Type

Full time

Salary

Negotiable

We're looking for an engineer to own the data layer at Severex: pipelines, dbt models, source integrations, data quality, and everything that makes them reliable and timely. You'll be the only engineer on the analytics team — we need someone who works autonomously, spots problems before anyone reports them, and fixes root causes rather than symptoms.

What are you working on?
  • Platforms: Mobile
For which tasks (responsibilities)?
  • Design, build, and maintain dbt models and data marts in Snowflake / BigQuery — architecture, refactoring, testing, documentation.
  • Prepare the data infrastructure for an AI analytics agent: maintain a data catalog and semantic layer (table/column descriptions, metric definitions, entity relationships), enforce consistent naming and documentation across dbt models, set up read-only interfaces for automated queries.
  • Own pipelines from requirements to production. That means talking to stakeholders, building the thing, and then making sure it actually works reliably every day — not handing it off and moving on.
  • Own data quality: validation, anomaly monitoring, data contracts.
  • Proactively find and fix bottlenecks in the infrastructure — cost, speed, reliability.
What kind of professional are we looking for?
  • Production experience with dbt. This is a key requirement.
  • Strong SQL : window functions, complex transformations, query optimization. Experience with Snowflake or BigQuery is a must.
  • Solid Python for data engineering: ETL/ELT pipelines, API integrations, automation.
  • Experience with Airflow (or a similar orchestrator), Git, and code review. Understanding of CI/CD, testing, and documentation practices for analytics code.
  • Ability to own a pipeline across its full lifecycle — from design to monitoring and incident response in production.
  • Engineering maturity and independence: gather requirements, make technical decisions, turn one-off requests into reliable, scalable solutions.
  • Experience with the GCP stack (BigQuery, Cloud Run, GCS).
  • Experience with or strong understanding of mobile app analytics: attribution, in-app events, and monetization.

Nice to have * Experience migrating between DWH platforms. * Interest or experience with LLM/AI tooling in a data context (MCP, semantic layer, data catalog). * Experience building a DWH architecture from scratch or doing a major refactor of an existing one.

What are the conditions and bonuses?
  • A competitive compensation package
  • The remote work model enables you to work from anywhere in the world.
  • Health insurance to support your well-being and keep you healthy.
  • Continuous professional development and a pathway for career growth.

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