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Data Engineer - Google Cloud Platform

Xander Consulting And Advisory
5 - 9 Years
Others

Posted on: 06/05/2026

Job Description

Responsibilities :

- Identify downstream implications of data loads/migration (e. g., data quality, regulatory, etc. ).

- Implement data pipelines to automate the ingestion, transformation, and augmentation of data sources, and provide best practices for pipeline operations.

- Capability to work in a rapidly changing business environment and to enable simplified user access to massive data by building scalable data solutions.

Requirements :

- Must Have: GCP + Scala + Kafka or Pub/Sub.

- Have Implemented and Architected solutions on Google Cloud Platform using the components of GCP.

- Experience with Apache Beam/Google Dataflow/Apache Spark in creating end-to-end data pipelines.

- Experience in some of the following: Python, Hadoop, Spark, SQL, BigQuery, Bigtable, Cloud Storage, Datastore, Spanner, Cloud SQL, and Machine Learning.

- Experience programming in Java, Python, etc.

- Expertise in at least two of these technologies: Relational Databases, Analytical Databases, and NoSQL databases.

- Certification as a Google Professional Data Engineer/Solution Architect is a major Advantage.

- 8+ years' experience in IT or professional services experience in IT delivery or large-scale IT analytics projects.

- Candidates must have expertise and knowledge of Google Cloud Platform; the other cloud platforms are nice to have.

- Expert knowledge in SQL development.

- Expertise in building data integration and preparation tools using cloud technologies (like Snaplogic, Google Dataflow, Cloud Dataprep, Python, etc. ).

- Experience with Apache Beam/Google Dataflow/Apache Spark in creating end-to-end data pipelines.

- Experience in some of the following: Python, Hadoop, Spark, SQL, BigQuery, Bigtable, Cloud Storage, Datastore, Spanner, Cloud SQL, and Machine Learning.

- Experience programming in Java, Python, etc.

- Advanced SQL writing and experience in data mining (SQL, ETL, data warehouse, etc. ) and using databases in a business environment with complex datasets.

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