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Cognizant

Greater London / Global

Cloud/Data Integration Architect

  • £70000

Job Description

Own data platform and integration architecture underpinning AI/ML and automation workloads, ensuring the data layer feeding these systems is well-designed, reliable, governed, and able to scale with growing model and agent usage.

Roles and Responsibilities

  • Design data pipelines and integration patterns that feed AI/ML and automation workloads
  • Architect cloud data platforms — storage, streaming, batch and real-time pipelines — sized and structured to support model training and inference at scale
  • Own data governance decisions, including data quality, lineage, access control, and compliance considerations for AI-consumable data
  • Ensure data pipelines feeding models and agents are production-grade: reliable, monitored, and able to scale with workload growth
  • Design integration architecture between source systems, data platforms, and downstream AI/automation consumers
  • Work closely with the AI Automation Architect to ensure data architecture aligns with automation and agent design requirements
  • Provide architectural guidance and design review to engineers building the underlying pipelines and integrations
  • Assess existing data architecture and identify gaps or risks relative to AI/ML consumption requirements
  • Define data platform standards and reusable patterns across engagements
  • Support capacity planning and scaling decisions as AI/automation workload volume increases
  • Own technical risk assessment related to data architecture, including data quality and pipeline reliability risks

Required Skills/Experience

  • Strong data architecture background, including data platform design and pipeline architecture
  • Cloud platform expertise across Azure/AWS/GCP, particularly data services such as data lakes, warehouses, and streaming platforms
  • Clear understanding of AI/ML data requirements — what "production-grade" means for data feeding models, including freshness, volume, and quality standards
  • Experience with data governance frameworks, including lineage, access control, and compliance
  • Integration architecture experience, including APIs, ETL/ELT, and event-driven patterns
  • Ability to partner closely with AI/automation architects rather than operating in a data silo
  • Experience assessing and improving legacy data architecture to support new AI/ML use cases
  • Strong documentation and standards-setting ability, given the cross-engagement nature of the role
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