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Data Engineer

🇷🇴 Romania

Management

Redshift

Python

AWS

Azure

Oracle

Snowflake

Amazon

Devops

SQL

Analyst

Data Engineer

from 🇷🇴 Romania

You might be our missing piece if you have:

  • 5+ years of experience in data engineering, database development, and cloud-based data solutions (especially on AWS).

  • Strong proficiency in SQL (T-SQL, PL/SQL) and experience with database technologies (e.g., Oracle, SQL Server, Snowflake/Redshift, Databricks).

  • Hands-on experience with ETL/ELT tools and frameworks, including modern cloud integration services (e.g., AWS Glue, Apache Airflow or Azure Data Factory).

  • Experience with data modeling, data integration, and data warehousing concepts.

  • Strong programming skills in Python (e.g., Pandas, automation scripting) for ETL pipeline development.

  • Knowledge of data governance and data quality frameworks, as well as security best practices for data (e.g., GDPR).

  • Experience working in Agile development environments, with collaborative tools and iterative processes.

We would be thrilled if you have:

  • Strong understanding of data lake architectures and advanced cloud-based data solutions (with depth in AWS data services).

  • Familiarity with high-performance query optimization techniques for large-scale datasets (e.g., query tuning, indexing strategies).

  • Exposure to data governance and metadata management systems (e.g., data catalog, lineage tools).

  • Experience with real-time streaming data frameworks and messaging systems (e.g., Apache Kafka, Amazon Kinesis) for event processing and ingestion.

  • Experience with Snowplow or similar event data tracking pipelines, including their implementation, maintenance, and optimization for behavioral data collection and analytics.

  • Knowledge of big data processing frameworks (e.g., Apache Spark or Flink) and experience with CI/CD pipelines or Infrastructure-as-Code for data engineering projects.

  • A sense of belonging while reading about our culture.

We will be working together on:

  • Designing, developing, and maintaining data pipelines – including both batch ETL processes and real-time streaming solutions – to support our product teams. This includes implementing and managing Snowplow-based event tracking pipelines to collect, validate, and process user behavioral data in real time for analytics and product insights.

  • Collaborating with cross-functional teams (product managers, analysts, data scientists, etc.) to understand data needs and deliver insightful, scalable data solutions.

  • Replicating and generalizing successful data pipeline patterns to accelerate new pipeline development and ensure consistency and reliability across projects.

  • Developing reusable data processing utilities and tooling (leveraging common data-centric libraries and frameworks in Python) to streamline ETL/ELT workflows.

  • Optimizing database performance and ensuring high reliability of our data stores by performing query optimization, indexing, and tuning of SQL queries.

by @maxrusakovic