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Role Summary
We are looking for a Data Engineer to design, build, and optimize ingestion pipelines and data transformations for an AWS-based Lakehouse platform in a banking environment.
This role focuses on implementing scalable data pipelines using Debezium, MSK, Flink, Python, AWS Lake Formation, and Redshift. The Data Engineer will support the transition from interval-based ingestion to near-real-time data processing, working under the technical direction of the Senior Data Engineer / Data Platform Lead.
Key Responsibilities
Required Skills
Domain Experience
Nice to Have
Key Qualifications
(Note: Due to the high volume of applications we receive, we are unable to respond to every candidate individually. If you have not received a response from GFT regarding your application within 10 workdays, please consider that we have decided to proceed with other candidates. We truly appreciate your interest in GFT and thank you for your understanding)
Job ID: 152344799
Skills:
data engineering , Machine Learning, Git, Linux, Unix Shell, Python, Deep Learning
Skills:
Github, BigQuery, PostgreSQL, Kafka, Sql, Rabbitmq, Gcp, Gitlab, MongoDB, Python, AWS, Airflow, ClickHouse, Airbyte, dbt, Redpanda
Skills:
Erp, Data Lake, Api, Data Warehouse, Data Integration, Python, Star-Schema, Snowflake data model, Data Lakehouse, Google data cloud solution
Skills:
snowflake , S3, Gdpr, BigQuery, RDS, Kafka, Data Governance, Data Warehousing, Redshift, Sql, Spark Streaming, Kinesis, Terraform, Iam, Python, AWS, Database operations, Flink, SOC 2, dbt, Event-driven architectures
Skills:
Devops, Pyspark, Apache Spark, Databricks, Python, Azure DevOps, Microsoft Azure Cloud