Data/Snowflake Architect @ NYC, NY (Hybrid Job - 3 days onsite is must)
Quick Overview
Job Description
Hello,
Hope you are doing well,
Position: Data/Snowflake Architect
Location: NYC, NY (3 days onsite is must)
Duration: 12 Months
Job Description:
We are seeking an experienced Data Architect to join our Assurance & Legal Technology department overseeing Snowflake/Postgres distributed database platform deployments. This role involves comprehensive data analysis, data schematic design, performance tuning, and leveraging modern technologies to source, sanitize, and curate data into a gold data source for advanced analytics and reporting. You will play a key role in driving modernization, automation, and performance optimization across our Cloud/On-Prem data-platform ecosystem.
Responsibilities
- Design, implement, and manage large-scale distributed database systems using Snowflake and Postgres.
- Lead the architecture and deployment of database clusters across hybrid cloud environments (AWS, Azure).
- Develop and maintain automation frameworks for provisioning, monitoring, and scaling database infrastructure.
- Collaborate with data engineering, platform, and application teams to ensure high availability, security, and performance.
- Drive adoption of best practices for schema design, query optimization, and data lifecycle management.
- Implement robust backup, disaster recovery, and compliance strategies.
- Mentor junior engineers and contribute to cross-training initiatives across database technologies.
- Govern how both structured and unstructured data is ingested, processed, and engineered for context.
- Ensure high availability, disaster recovery, and performance tuning across multi-region deployments.
- Collaborate with senior product, engineering, and audit leadership to influence business strategy and ensure solutions are built on a sound architectural foundation.
- Architect and oversee the design and development of data and context engineering capabilities using Snowflake and PostgreSQL.
- Make critical design decisions that enable seamless integration into Data Analytics, Business Intelligence Reporting, and AI agent workflow capabilities.
- Establish and enforce data governance, quality standards, and validation frameworks.
- Guarantee the integrity, security, and reliability of all data solutions.
- Drive modernization initiatives including cloud-native database adoption, serverless architecture, and AI/ML integration.
- Evaluate and implement emerging technologies to improve platform efficiency and developer experience.
- Drive the future of audit technology by leading architectural innovation.
- Champion the evaluation and adoption of next-generation data platforms, knowledge graphs, and advanced data fabrics.
- Act with integrity, professionalism, and personal responsibility to uphold Morgan Stanley’s respectful and courteous work environment.
Qualifications
- Minimum 10 years of recent experience in data architecture, data engineering, or a similar field.
- Hands-on expertise with PostgreSQL and Snowflake administration and performance tuning.
- Strong scripting and automation skills (Python, Ansible, etc.).
- Familiar with Cloud Based Architectures /Data-Warehousing Platforms, prior experience / knowledge in Snowflake Design Patterns and migration workflow would be a plus.
- Prior exposure building ML and generative AI solutions using Snowflake Cortex Analyst, Search, AI SQL, Snowflake ML, and Snowpark Container Services.
- Proven record of architecting and delivering large-scale data warehouse modeling and reporting solutions for enterprise systems.
- A bachelor’s degree from an accredited college or university is required. A master''s degree in computer science, engineering, or a related technical discipline is preferred.
- Expertise in architecting cloud-native data ecosystems using platforms such as Snowflake, Databricks, Talend, SPARK, Power BI, and Microsoft Fabric.
- Deep knowledge of designing solutions that incorporate Retrieval-Augmented Generation (RAG) and vector search (e.g., Azure AI Search).
- In-depth understanding of architectural patterns for processing and modeling both structured transactional data and unstructured information.
- Experience with transactional processing and AI/ML applications.
- Demonstrated experience defining architectural principles, data governance policies, and technology standards within a large-scale, regulated, and Agile Software Development Life Cycle (SDLC) environment.
- Exceptional problem-solving, communication, collaboration and leadership skills.
- Ability to articulate strategic technical vision, influence executive-level stakeholders, and guide solutions for complex business problems.
Skills
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