Resident Solution Architect

Celebal Technologies

Dadri

On-site

INR 3,000,000 - 6,000,000

Full time

33 hours ago
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Job summary

Celebal Technologies seeks a Senior Solution Architect to join our Databricks Practice and drive data modernization for enterprise customers, shaping Lakehouse solutions on the Databricks Data Intelligence Platform. You will engage with CDOs, Data Architects, and Engineering leaders to translate business problems into scalable architectural blueprints.

You will lead pre-sales and delivery architecture conversations, design end-to-end Lakehouse architectures, and guide migrations from legacy

Qualifications

  • 8+ years in data engineering / data platform architecture, with 3+ years hands-on on Databricks in a customer-facing or consulting capacity.
  • Led at least 2–3 large-scale EDW modernization or Lakehouse migration programs end to end.
  • Strong fundamentals of the Databricks Data Intelligence Platform.
  • Delta Lake internals (transaction log, OPTIMIZE, Z-order, Liquid Clustering, Deletion Vector, Predictive Optimization).
  • Spark execution model, Photon, cluster sizing, and performance tuning.
  • Unity Catalog object model (metastore, catalogs, schemas, volumes, external locations, storage credentials).
  • Hands-on experience designing and deploying Lakeflow Declarative Pipelines, Lakeflow Connect, and Serverless workloads in production.

Responsibilities

  • Lead pre-sales and delivery architecture conversations with enterprise customers, owning the technical narrative from discovery through solution design and through implementation oversight.
  • Design end-to-end Databricks Lakehouse architectures spanning ingestion, transformation, governance, ML, and consumption layers — aligned to Medallion Architecture principles.
  • Drive EDW modernization engagements, including migration strategies from legacy platforms to Databricks, with clear wave planning, risk mitigation, and TCO/ROI articulation.
  • Advise customers on the adoption of advanced Databricks features.
  • Lakeflow Declarative Pipelines (LDP) for production-grade ETL with built-in data quality and lineage.
  • Lakeflow Connect for managed ingestion from SaaS, databases, and file sources.
  • Serverless Compute (SQL warehouses, jobs, notebooks) for cost and operational efficiency.
  • Unity Catalog for unified governance, lineage, and fine-grained access control.
  • Databricks Asset Bundles (DAB) for CI/CD and environment promotion
  • Mentor data engineers, platform engineers, and junior architects on Databricks best practices.

Skills

Databricks expertise
Solution architecture
Cloud platforms
SQL & PySpark
Leadership & stakeholder mgmt
PoCs & workshops
EDW modernization
Data governance
MLOps / GenAI awareness

Tools

Databricks Platform
Lakehouse Architecture
Lakeflow Declarative Pipelines
Unity Catalog
MLflow
Terraform / IaC
CI/CD tooling
Immuta/Collibra/Purview/Alation
DAB / Asset Bundles

Job description

We are seeking a Senior Solution Architect to join our Databricks Practice and play a pivotal role in shaping data modernization journeys for enterprise customers. This is a customer-facing, consulting-oriented role where you will engage with CDOs, Data Architects, and Engineering leaders to design and deliver scalable, future-ready Lakehouse solutions on the Databricks Data Intelligence Platform.

You will be the trusted technical advisor — translating business problems into architectural blueprints, guiding customers through EDW modernization programs, and championing the adoption of Databricks' most advanced capabilities including Lakeflow Declarative Pipelines (LDP), Lakeflow Connect, Serverless Compute, Unity Catalog, and AI/BI workloads.

Responsibilities:
  • 1. Lead pre-sales and delivery architecture conversations with enterprise customers, owning the technical narrative from discovery through solution design and through implementation oversight.
  • 2. Design end-to-end Databricks Lakehouse architectures spanning ingestion, transformation, governance, ML, and consumption layers — aligned to Medallion Architecture principles.
  • 3. Drive EDW modernization engagements, including migration strategies from legacy platforms (Teradata, Netezza, Oracle, SAS, Greenplum, Synapse, Snowflake, on-prem Hadoop) to Databricks, with clear wave planning, risk mitigation, and TCO/ROI articulation.
  • 4. Advise customers on the adoption of advanced Databricks features.
  • 5. Lakeflow Declarative Pipelines (LDP / formerly DLT) for production-grade ETL with built-in data quality and lineage.
  • 6. Lakeflow Connect for managed ingestion from SaaS, databases, and file sources.
  • 7. Serverless Compute (SQL warehouses, jobs, notebooks) for cost and operational efficiency.
  • 8. Unity Catalog for unified governance, lineage, and fine-grained access control.
  • 9. Databricks Asset Bundles (DAB) for CI/CD and environment promotion
  • 11. Expertise in Data Bulid Tool (DBT) and Databricks Autoloader
  • 13. MLflow, Model Serving, and Mosaic AI for ML and GenAI workloads
  • 14. Conduct architecture deep-dives, PoCs, and workshops — including cost modelling roadmaps, runbooks and executive presentations.
  • 15. Produce Client ready deliverables. HLD / LLD documents, reference architecture, migration road maps, runbook and execution presentations
  • 16. Partner with sales, delivery, and Databricks field teams to shape proposals, SoWs, and bid responses.
  • 17. Stay ahead of the Databricks product roadmap and evangelize new capabilities internally and with customers.
  • 18. Mentor data engineers, platform engineers, and junior architects on Databricks best practices.
Qualifications:
  • 8+ years in data engineering / data platform architecture, with 3+ years hands-on on Databricks in a customer-facing or consulting capacity.
  • Demonstrated experience leading at least 2–3 large- scale EDW modernization or Lakehouse migration programs end to end.
  • Strong, fundamentals-level understanding of the Databricks Data Intelligence Platform.
  • Delta Lake internals (transaction log, OPTIMIZE, Z- order, Liquid Clustering, Deletion Vector, Predictive Optimization)
  • Spark execution model, Photon, cluster sizing, and performance tuning.
  • Unity Catalog object model (metastore, catalogs, schemas, volumes, external locations, stor age credentials).
  • Workspace, account, and identity architecture across AWS / Azure / GCP.
  • Handson experience designing and deploying Lakeflow Declarative Pipelines, Lakeflow Conn ect, and Serverless workloads in production.
  • Solid grounding in Medallion Architecture, dimensional modeling, and data governance fra meworks.
  • Strong SQL and PySpark skills; comfort reading and reasoning about Spark execution plans.
  • Cloud fluency on at least one of Azure, AWS, or GCP including networking, IAM, and storage layers (ADLS Gen2 / S3 / GCS).
  • Excellent communication and stakeholder management skills able to engage equally with engineers and C- suite.
  • Willing to travel and stay overseas for Solutioning and Delivering projects.
Required Skills:
  • Databricks certifications: Certified Data Engineer Professional, Certified Machine Learning Pr ofessional, or Databricks Certified Solutions Architect Professional.
  • Experience with DR architectures (Delta Deep Clone, cross-region replication, RPO/RTO design).
  • Exposure to MLOps / GenAI patterns on Databricks (MLflow, Model Serving, Vector Search, Mosaic AI Agent Framework)
  • Familiarity with legacy ETL/ELT platforms (Informatica, ODI, SAS DI, DataStage, Talend) for migration credibility.
  • Experience with Terraform / Databricks Asset Bundles for IaC and CI/CD.
  • Working knowledge of Immuta, Collibra, Purview, or Alation for governance integration.
  • Industry depth in BFSI, Insurance, Retail, Manufacturing, or Healthcare.
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