Quick Summary
Overview We are looking for an experienced and strategic Senior Data Architect to lead the design, modernization, and governance of enterprise-scale data platforms and architectures.
We are looking for an experienced and strategic Senior Data Architect to lead the design, modernization, and governance of enterprise-scale data platforms and architectures. The ideal candidate will have strong expertise in data engineering, cloud data ecosystems, enterprise integration, analytics, AI/ML data readiness, and modern data governance practices.
The role requires close collaboration with business stakeholders, enterprise architects, AI teams, engineering teams, and leadership to build scalable, secure, and high-performing data solutions that support digital transformation and advanced analytics initiatives.
Responsibilities
~1 min read- →Define and implement enterprise-wide data architecture strategies, standards, and best practices.
- →Design scalable data platforms, data lakes, data warehouses, and modern lakehouse architectures.
- →Lead architecture discussions for cloud-based data ecosystems across AWS, Azure, or GCP.
- →Design end-to-end data pipelines for structured, semi-structured, and unstructured data.
- →Establish data governance, metadata management, lineage, security, and compliance frameworks.
- →Work closely with AI/ML teams to enable high-quality data foundations for analytics and AI solutions.
- →Define enterprise data models, master data management (MDM), and data integration strategies.
- →Guide teams on ETL/ELT frameworks, streaming architectures, and real-time data processing.
- →Collaborate with business stakeholders to translate business requirements into scalable technical solutions.
- →Lead performance optimization, scalability planning, and cost optimization initiatives for data platforms.
- →Evaluate and recommend new tools, technologies, and accelerators in the data and AI ecosystem.
- →Provide technical leadership and mentoring to data engineers, developers, and architects.
- →Ensure compliance with enterprise security, privacy, and regulatory requirements.
- →Participate in solution estimation, proposal creation, architecture reviews, and customer discussions.
Requirements
~1 min read- Bachelor’s or Master’s degree in Computer Science, Information Technology, Data Science, or related field.
- Cloud certifications preferred:
- AWS Certified Data Analytics
- Azure Data Engineer / Solutions Architect
- Google Professional Data Engineer
- TOGAF or enterprise architecture certifications are an added advantage.
- Strong experience in enterprise data architecture and large-scale data platform implementation.
- Expertise in cloud platforms such as:
- AWS (Redshift, Glue, EMR, Athena, S3)
- Azure (Azure Data Factory, Synapse, Databricks, ADLS)
- GCP (BigQuery, Dataflow, Dataproc)
- Strong knowledge of:
- Data Warehousing
- Data Lakes / Lakehouse Architecture
- ETL / ELT frameworks
- Data Modeling
- Data Governance
- Master Data Management
- Metadata Management
- Experience with modern data engineering tools such as:
- Databricks
- Snowflake
- Kafka
- Spark
- Airflow
- dbt
- Strong SQL and database design expertise.
- Understanding of AI/ML data pipelines and analytics ecosystems.
- Experience with API integrations and enterprise integration patterns.
- Familiarity with DevOps/DataOps/MLOps practices.
- Strong stakeholder management and communication skills.
- Experience leading distributed/global teams.
- Strong problem-solving and strategic thinking capabilities.
- Experience working in Agile delivery environments.
- Ability to drive architecture governance and technical decision-making.
10 years +
Location & Eligibility
Listing Details
- Posted
- October 7, 2026
- First seen
- October 7, 2026
- Last seen
- October 7, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 56%
- Scored at
- October 7, 2026
Signal breakdown
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