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Data Architect - Medallion Architecture

Inypeople Technology
10 - 15 Years
Chennai

Posted on: 29/04/2026

Job Description

Description :

What you'll do :

- Create high-quality proposals and RFP (Request for Proposal) responses. Ensure the solution is clearly articulated, including technical, operational, and financial aspects.

- Demonstrate to leverage best practices and offer insight into client business and industry verticals.

- Collaborate across sales teams to lead solution scoping, workshops, and technical presentations building bespoke architectures that weave business challenges with cutting-edge solutions

- Own the design and execution of Proofs of Concept (PoCs), technical demonstrations, and RFP/RFI responses tailored to client environments

- Act as a trusted advisor to clients engaging with key stakeholders including C-level executives to bridge technical insights and business value

- Lead the design, development, and maintenance of scalable data pipelines and lakehouse architectures using Azure Databricks (Notebooks, PySpark, SQL).

- Architect and implement Medallion Architecture (Bronze, Silver, Gold layers) to drive optimal data transformation and organization.

- Experience in Integrating ETL process from external APIs, Data Dumps, Public Calls and other datawarehouse sources.

- Oversee data governance, access control, and lineage using Databricks Unity Catalog; champion best practices for metadata management.

- Manage and mentor a team of data engineers; provide technical guidance and career development opportunities.

- Direct the management of data storage solutions using Azure Data Lake Storage (ADLS), ensuring robust access policies.

- Establish and maintain Delta Lake tables for reliable, scalable ACID transactions and incremental processing across projects.

- Optimize Spark jobs and Databricks clusters for performance, scalability, and cost efficiency at enterprise scale.

- Lead ingestion and transformation strategies from diverse sources (APIs, files, databases, cloud platforms).

- Partner with stakeholders and cross-functional teams to deliver well-governed, reusable data models and analytics solutions.

- Drive implementation of data quality frameworks, error handling mechanisms, and robust monitoring practices.

- Enforce data security, governance, and compliance requirements across all Azure and cloud data assets.

- Utilize Azure Synapse Analytics, Key Vault, and Azure Monitor to build resilient, secure, and observable data platforms.

- Own CI/CD and deployment best practices using Git and Azure DevOps; establish automation standards and code review processes.

- Stay ahead of industry trends in big data, ETL, and lakehouse technologies; proactively recommend improvements.

- Collaborate with data science and AI teams to support machine learning (ML), generative AI, and large language model (LLM) initiatives using enterprise data.

- Guide data consultation efforts for enterprise digital transformation, advising stakeholders on data architecture modernization and strategic priorities.

- Develop and articulate an AI-ready data roadmap, enabling the business to leverage advanced analytics, ML, and LLM solutions.

- Ensure data pipelines and platforms are optimized for ML and AI workloads, including integration and preparation of datasets for model training and inference.

What we seek in you :

- Bachelor's or Master's in Computer Science, Engineering, or a related field.

- 10 to 15 years of experience in data engineering.

- Advanced expertise in Databricks, PySpark, SQL, Azure cloud data engineering, and related tools.

- Proven track record architecting and leading end-to-end pipeline solutions leveraging Medallion architecture, Unity Catalog, Iceberg-Databricks and Delta Lake.

- Experience mentoring and scaling data engineering teams; excellent leadership and communication skills.

- Deep understanding of big data principles, data lakehouse architectures, and cloud ETL orchestration.

- Hands-on with Azure Data Lake Storage (ADLS), Data Factory (ADF), Synapse Analytics, Key Vault, Sql Server and Azure Monitor.

- Skilled in CI/CD pipelines, automation with Git and Azure DevOps, and code quality enforcement.

- Strong analytical mindset with a strategic approach to problem-solving and stakeholder management.

- Certifications in Azure/Data Engineering (Databricks, Azure) are highly desired.

- Proven ability to consult on data strategy and architecture for large-scale digital transformation initiatives.

- Strong knowledge of data preparation, feature engineering, and optimization for ML and AI workloads.

- Experience collaborating cross-functionally with data science, analytics, and business teams on ML/AI use cases.

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