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About the role
The Data Architect will design and govern scalable big data and analytics platforms on any leading cloud (AWS/Azure/GCP), working closely with sales and delivery teams to shape solutions for prospective and existing clients. The role combines handson architecture, technical leadership, and presales responsibilities, with a strong focus on SQL, Python, and modern data engineering practices. Key Responsibilities - Design and own endtoend data architectures including data lakes, data warehouses, and streaming pipelines using big data technologies (e.g., Spark, Kafka, Hive) on public cloud platforms. - Define canonical data models, integration patterns, and governance standards to ensure data quality, security, and compliance across the organization. - Lead presales activities: assess client requirements, run discovery workshops, define solution blueprints, size and estimate effort, and contribute to RFP/RFI responses and proposals. - Build and review PoCs/accelerators using SQL and Python (e.g., PySpark, notebooks) to demonstrate feasibility, performance, and business value to customers. - Collaborate with data engineers, BI/ML teams, and application architects to ensure the designed architecture is implemented as intended and is costefficient, scalable, and reliable. - Establish best practices for data security, access control, and lifecycle management in alignment with regulatory and enterprise policies. - Monitor and continuously optimize data platforms for performance, reliability, and cost, leveraging cloudnative services and observability tools. - Provide architectural guidance and mentoring to engineering teams; review designs and code for critical data components. Required Skills & Experience - 12-16 years of overall experience in data engineering/analytics, with 4+ years as a Data/Big Data Architect. - Robust expertise in SQL (analytical queries, performance tuning) and Python for data processing and automation. - Handson experience with big data frameworks and tools such as Spark, Kafka, Hadoop ecosystem, distributed file systems, and modern ETL/ELT pipelines. - Practical experience on at least one major cloud platform (AWS, Azure, or GCP) with services such as data lakes, warehouse services (Redshift/Snowflake/BigQuery/Synapse), and orchestration tools. - Proven presales exposure: client workshops, solution design, RFP/RFI responses, effort estimation, and building PoCs or demos. .
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