Qinshift

Senior Data Engineer

Kraków, Lesser Poland Voivodeship, PL

15 days ago
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Summary

  • This is us

At Qinshift and Avenga we are merging together to start a new era of technology that matter. Leveraging the power of innovations, we are on a journey to shape the future of work, and we are inviting you to co-create it with us.

This is you

  • Results-driven Data Engineer with expertise in Machine Learning (ML) and Generative AI model training, testing, and implementation within the Snowflake ecosystem. Specialized in building scalable ETL/ELT pipelines, data warehousing, and real-time analytics for financial institutions. Proficient in cloud-based data engineering, orchestration, and optimization of credit risk assessment, fraud detection, and predictive analytics solutions.
  • Data modeling and semantic layer design for Power BI & Snowflake Cloud-native data architectures (Snowflake, OCI, GCP, AWS, Azure - One of them is enough with focus on OCI)
  • Real-time & batch data processing (ClickHouse, PostgreSQL, MySQL, MSSQL)
  • Machine Learning & Advanced Analytics ML model deployment & MLOps (Snowflake ML, Python, Scikit-learn, TensorFlow)
  • Credit risk scoring & anomaly detection (Power BI, SQL, Python)
  • Predictive analytics & real-time fraud detection
  • Feature engineering & model optimization
  • Financial Data & Compliance
  • Regulatory compliance (GDPR, FCRA, Basel, KSA regulations)
  • Credit risk modeling & real-time risk assessment
  • Banking data preparation & fraud detection pipelines
  • - Development & DevOpsGit, Bitbucket, CI/CD for data workflows API integrations & streaming architectures (Kafka, Snowpipe)
  • Cost optimization strategies for Snowflake compute usage

This is your role

  • ETL/ELT pipeline development using dbt, Airflow, and Python
  • Data modeling and semantic layer design for Power BI & Snowflake
  • Cloud-native data architectures (Snowflake, OCI, GCP, AWS, Azure - One of them is enough with focus on OCI)Real-time & batch data processing (ClickHouse, PostgreSQL, MySQL, MSSQL)- Machine Learning & Advanced Analytics
  • ML model deployment & MLOps (Snowflake ML, Python, Scikit-learn, TensorFlow)Predictive analytics & real-time fraud detectionFeature engineering & model optimization
  • Financial Data & ComplianceCredit risk modeling & real-time risk assessmentBanking data preparation & fraud detection pipelines
  • Development & DevOps Git, Bitbucket, CI/CD for data workflows
  • API integrations & streaming architectures (Kafka, Snowpipe)
  • Cost optimization strategies for Snowflake compute usage

We take pride in the diverse skills and character of our teams, welcoming everyone to apply and contribute to our collective strength.

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