Data Engineering Architect

Anblicks

Ahmedabad

On-site

INR 1,200,000 - 1,800,000

Full time

14 days+

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Job summary

A leading technology firm in Gujarat is seeking a Data Engineering Architect to lead the architecture and execution of data modernization initiatives. You will oversee large-scale data migrations, direct the design of data pipelines, and ensure seamless data flows across platforms. The ideal candidate has a strong background in data engineering with extensive experience in cloud-native services. Proficiency in modern data stacks such as Spark and Kafka is required. This full-time position offers a challenging and dynamic work environment.

Qualifications

  • Strong background in data engineering and cloud-native data services.
  • Extensive experience with data architectures on cloud platforms.
  • Proficiency with modern data stacks and integration patterns.

Responsibilities

  • Lead the architecture and technical execution of data modernization initiatives.
  • Oversee large-scale data migration, ETL/ELT modernization, and pipeline re-engineering.
  • Collaborate with teams to ensure seamless end-to-end data flows.

Skills

Data engineering
Cloud-native services
ETL/ELT frameworks
Distributed data platforms
Data architecture design

Tools

Spark
Kafka/Event streams
SQL/NoSQL
Lakehouse platforms

Job description

Overview

The Data Engineering Architect will lead the end-to-end architecture, design, and technical execution of data modernization initiatives across cloud, application, and data platforms. This role is responsible for defining scalable data architectures, guiding engineering teams, and ensuring successful migration, integration, and modernization of enterprise data ecosystems.

Architecture & Technical Leadership
  • Define the target-state data architecture spanning ingestion, transformation, storage, and consumption layers across cloud platforms.
  • Lead the modernization of data pipelines, data platform components, and application‑data integration patterns.
  • Provide architectural guidance for cloud‑native services, data engineering frameworks, and analytics/AI readiness.
  • Establish best practices for data modeling, schema design, metadata, governance, and lineage.
Data Engineering & Migration Leadership
  • Oversee large-scale data migration, ETL/ELT modernization, and pipeline re‑engineering efforts.
  • Direct design and optimization of ingestion frameworks, workflow orchestration, dependency management, and distributed compute architecture.
  • Ensure data reliability, performance, and SLAs through technical assessments and optimization strategies.
  • Evaluate and modernize legacy data systems, frameworks, and integrations.
Cloud & Platform Alignment
  • Work with cloud architects to align data architecture with infrastructure standards, security policies, RBAC, and governance frameworks.
  • Drive adoption of cloud-native services such as storage, compute, serverless, AI search, logging, and monitoring.
Collaboration & Cross‑Team Alignment
  • Partner with application architects, cloud teams, and business/analytics stakeholders to ensure seamless end‑to‑end data flows.
  • Work closely with SMEs to validate business rules, ingestion requirements, and domain-specific models.
  • Provide technical direction to engineering teams, ensuring consistency with architectural principles.
Quality, Governance & Security
  • Ensure adherence to data governance, quality, compliance, and privacy requirements (including PII/PHI constraints).
  • Define standards for data lifecycle management, observability, and operational excellence.
  • Review and validate requirements, test strategies, and implementation plans.
Documentation & Communication
  • Produce architectural diagrams, technical designs, migration plans, and data flow documentation.
  • Communicate complex technical concepts to engineering teams, architects, and business stakeholders.
  • Support UAT, production readiness, and handover activities during deployment phases.
Required Experience
  • Strong background in data engineering, cloud-native data services, ETL/ELT frameworks, and distributed data platforms.
  • Extensive experience designing and modernizing data architectures on cloud environments (Azure/AWS/GCP).
  • Proficiency with modern data stacks: Spark, Synapse/Databricks, Kafka/Event streams, SQL/NoSQL, Lakehouse platforms.
  • Understanding of application‑data architectures, integration patterns, and DevOps/CI-CD processes.
  • Ability to lead technical teams, troubleshoot complex data problems, and drive best practices across engineering functions.
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