Position: Cloud & Data Platform Architect(Looker/LookLM)
Location: San Ramon, CA (On-Site)
Employment Type: Contract
Job Description-
We run production cloud and data platforms for enterprise clients multi-region GCP estates, BigQuery warehouses feeding hundreds of downstream consumers, and BI layers that executives look at every morning. Those platforms are increasingly not single-cloud. Workloads, identity, and data land in both GCP and Azure, and someone has to own the shape of the whole thing rather than one slice of it.
This is that owner. It is a hands-on architect role, not a slideware role. You will design the landing zones, review the Terraform, sit in the incident call when the warehouse queues, and then present the remediation to a client CIO the same week.
What You Will Own
Platform architecture
Target-state architecture for cloud infrastructure and data platforms across GCP (primary) and Azure (secondary but real)
Landing zone design: org/subscription hierarchy, network topology, connectivity (Interconnect / ExpressRoute), DNS, egress control
Identity and access architecture spanning Google Cloud IAM and Microsoft Entra ID, including federation and workload identity
Cost architecture capacity vs on-demand models, BigQuery editions and slot reservations, Azure reservations, chargeback/showback
Data platform
Warehouse and lakehouse architecture: BigQuery, ADLS Gen2, Synapse or Fabric, Databricks where relevant
Ingestion and orchestration design: Pub/Sub, Dataflow, Datastream, Cloud Composer / Airflow, Azure Data Factory
Transformation layer standards: Dataform and/or dbt repo structure, environments, promotion path, CI gates, testing
Data governance: catalog, lineage, classification, retention, PII handling, and the controls that make a GDPR/DPDP audit uneventful BI and semantic layer
Looker platform ownership: LookML model architecture, Explore design, PDT/aggregate-awareness strategy, performance tuning
Access architecture in Looker model sets, user attributes, row-level security patterns that survive an audit
Instance administration, upgrades, embed and API usage, and migration work off legacy BI tools
Engineering discipline
Infrastructure as code as the only path to production Terraform modules, state strategy, policy-as-code
CI/CD across Cloud Build / GitHub Actions / Azure DevOps
Observability and SLOs for both infrastructure and data (freshness, volume,schema, cost anomalies)
Reliability practice: runbooks, RCA ownership, postmortems that change the design
Client and commercial
Translate a business problem into an architecture and a defensible estimate
Lead technical discovery, write solution sections of proposals, and present to client architecture review boards
Mentor 5 10 engineers; set the technical bar in design reviews and code reviews
Must have
GCP, deep: BigQuery, GKE, Cloud Run, Cloud Storage, VPC design and VPC Service Controls, IAM and org policies, Cloud Composer, Pub/Sub, Cloud Build, Artifact Registry, Cloud Logging/Monitoring
Azure, working depth: landing zones per Cloud Adoption Framework, AKS, Azure Storage/ADLS Gen2, Azure Data Factory, Entra ID, Azure Policy, Azure
Monitor, Azure DevOps
Infrastructure: networking that you can whiteboard from memory routing, peering, private endpoints, hybrid connectivity, firewall and egress design
SQL at an expert level, plus Python for tooling and automation
Terraform in production, with modules you have authored and maintained
Data modelling dimensional and denormalised, and the judgement to know when each is right
Demonstrated ownership of a production platform at meaningful scale: TB-to-PB warehouse, 100+ source systems, or 500+ BI users
Experience running a multi-cloud or hybrid estate in reality, not just in a diagram
Client-facing communication strong enough to hold a room of skeptical senior stakeholders
Strongly Preferred
Looker / LookML hands-on: development and administration. This is the single biggest differentiator among otherwise equal candidates
Dataform or dbt at scale, with a real promotion process between environments
FinOps track record a specific cost reduction you can quantify and explain
Migration experience: on-prem to cloud, or BI tool consolidation (Domo, Tableau, Power BI, Qlik Looker)
Exposure to production GenAI or agentic workloads on cloud infrastructure
Certifications: GCP Professional Cloud Architect or Professional Data Engineer; Azure Solutions Architect Expert (AZ-305); Looker LookML Developer
Nice to have
Kafka or Confluent; streaming-first architectures
Databricks, Snowflake, or Fabric comparative experience
Regulated-industry background (BFSI, healthcare, telco) with the compliance posture that comes with it
Pre-sales or partner co-sell experience with a hyperscaler field team
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