Senior GCP Data Engineer/Data Architect Consultant
iScale Solutions · United States
Skills in this posting
The posting
Category: IT Services
Key Responsibilities
Assess the existing data pipeline, GCP architecture, data sources, and current limitations.
Design a BigQuery-based medallion architecture: Bronze, Silver, Gold, and Serving layers.
Design and/or implement data ingestion pipelines from Cloud Storage and Cloud SQL / MySQL into BigQuery.
Define BigQuery datasets, tables, partitioning, clustering, and cost-control strategies.
Support batch, incremental, and on-demand processing patterns.
Design curated and BI-ready datasets for analytics and reporting.
Support data quality checks, validation, logging, monitoring, and reprocessing patterns.
Define integration patterns for Elasticsearch or other search / serving layers.
Support architecture for AI enrichment, embeddings, semantic search, and media metadata where required.
Prepare technical documentation, architecture diagrams, implementation roadmap, and handover materials.
Work closely with client engineering, data, DevOps, and product teams.
Requirements
Required Skills
Strong hands-on experience with Google Cloud data services.
Strong BigQuery experience, including modeling, optimization, partitioning, clustering, and cost control.
Experience with Cloud Storage ingestion patterns.
Experience with Cloud SQL / MySQL to BigQuery integration.
Experience building batch and incremental data pipelines.
Experience with Dataform, dbt, Cloud Composer / Airflow, Dataflow, Cloud Run, or similar tools.
Strong SQL and data modeling skills.
Good understanding of lakehouse / medallion architecture.
Experience with data quality, metadata, lineage, logging, and monitoring.
Ability to work in an ambiguous consulting environment and translate high-level requirements into practical implementation plans.
Strong communication skills and client-facing experience.
Preferred Skills
Experience with Elasticsearch or search index publishing.
Experience with Power BI-ready datasets or analytical serving layers.
Experience with Vertex AI, Gemini, embeddings, vector search, or semantic search.
Experience with media, social media, marketing, campaign, influencer, or audience data.
Experience with Dataplex, Data Catalog, IAM, policy tags, row-level security, or column-level security.
Experience with CI/CD for data pipelines.
WFH or Hybrid and competitive salary
Details Originally posted on Himalayas
The PivotHop read
- What a data engineer actually earnsmedian, seniority, by country
- Alternative careers for a data engineerevery measured route out
- Data Architect → Data Engineer49% readiness
- Data Analyst → Data Engineer31% readiness
- All open data engineer rolesthe full board
Where these skills also reach
- 95 open data architect roles90% readiness from data engineer
- 600 open data analyst roles62% readiness from data engineer
- 73 open database administrator roles59% readiness from data engineer
- 600 open solutions architect roles55% readiness from data engineer
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