H1 is the connecting force for global HCP, clinical, scientific and research information.
Senior Data Engineer
Location
New York
Posted
75 days ago
Salary
0
Seniority
Senior
No structured requirement data.
Job Description
Senior Data Engineer
H1
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Role Description Saaf AI is building the future of mortgage lending by combining cutting-edge AI with robust data infrastructure. As part of a top-10 private lender processing billions in loan volume, backed by leading asset managers and funds, we are growing fast — and data and AI are at the center of everything we build. We don’t just experiment with AI — we integrate it deeply into how we operate. Our systems rely on scalable data pipelines, structured data models, and real-time workflows that power underwriting, document processing, and borrower interactions. AI is embedded across these layers, from data extraction and validation to intelligent automation. If you’re excited about building high-quality data systems in an AI-native environment — where data pipelines, automation, and intelligent workflows come together — you’ll fit right in. Key Responsibilities - Data Pipeline Development - Design, implement, and maintain ETL/ELT pipelines for structured and unstructured datasets from internal and external sources. - Leverage AI-assisted development tools to accelerate pipeline authoring, generate transformation logic, and automate boilerplate code. - Data Warehousing & Modeling - Build and optimize data warehouses and marts (Snowflake, BigQuery, or similar) for analytics, reporting, and product use cases. - Design, implement, and maintain conceptual, logical, and physical data models to ensure scalable, consistent, and high-quality datasets for downstream analytics and applications. - Integration & Ingestion - Ingest data from APIs, SaaS platforms (CRM, financial data APIs), and internal systems into the core data platform. - Build and maintain reliable connectors and ingestion frameworks that handle schema evolution, rate limits, and error recovery. - Data Quality & Governance - Implement validation, schema management, and robust documentation to ensure data accuracy and compliance. - Use AI tools to support data profiling, anomaly detection, and automated documentation of data lineage and transformations. - AI-Integrated Data Engineering - Use AI-assisted tools (code generation, intelligent autocomplete, automated testing) as a regular part of your data engineering workflow. - Evaluate and integrate emerging AI tools and practices into the team's data development process. - Build and support agentic workflows and multi-step automated processes that act on data in real time, including AI-powered data validation and enrichment. - Apply AI-assisted analysis to debugging pipeline failures, optimizing query performance, and identifying data quality issues. - Performance & Reliability - Monitor and fine-tune pipeline and warehouse performance for scalability and cost efficiency. - Set up logging, monitoring, and alerting for data jobs to ensure reliability and fast incident response. - Security & Compliance - Apply data security and privacy controls aligned with financial regulatory requirements, ensuring full traceability of every transformation. - Foster a security-first mindset across all data operations. - Analytics Enablement - Provide clean, consistent datasets for analysts, product managers, and operational teams to support fast, data-driven decisions. - Collaborate closely with product managers, data scientists, and full stack engineers to align data models with business needs. Qualifications - 5+ years in a data engineering or similar backend data-focused role. - Strong SQL and Python development skills for data transformation and automation. - Experience with modern ETL/ELT frameworks such as dbt. - Proficiency with cloud platforms (AWS preferred) and serverless data services. - Strong experience with data warehouse technologies (Snowflake preferred). - Skilled in API integrations and ingestion from third-party systems. - Proficient in data modeling (Kimball/Star schema, Data Vault). - Demonstrated, regular use of AI-powered development tools (e.g., Cursor, GitHub Copilot, Claude Code, or similar) to accelerate data pipeline development, debugging, or documentation. - Proven track record of delivering production-grade data pipelines at scale. - Experience implementing CI/CD practices for data workflows. - Experience collaborating closely with product managers, data scientists, and full stack engineers. - Startup mindset: hands-on, resourceful, and comfortable operating in a fast-paced environment. 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Role Description As an Integration Specialist, you will play a vital role in setting up and managing inventory data imports and exports for our dealership clients. You’ll work directly with customers, third-party providers, and internal stakeholders to ensure seamless data connections. This highly detail-oriented position requires strong communication, problem-solving skills, and technical aptitude. Above all, you are a customer-first professional who thrives in a fast-paced and constantly evolving environment. Key Responsibilities - Set up, map, and parse dealer inventory files from third-party sources. - Communicate clearly and professionally with clients and third parties via email and phone. - Serve as the primary point of contact for client data feed issues and ensure timely, thorough follow-up. - Track case progress using a CRM system and maintain accurate documentation. - Troubleshoot and resolve import/export feed issues, ensuring minimal client disruption. - Confirm client satisfaction before resolving each request. - Collaborate cross-functionally with internal teams and external partners. - Manage and resolve first-level escalations and ensure client concerns are addressed appropriately. - Meet or exceed departmental KPIs and service level expectations. Qualifications - 2+ years of customer service or technical support experience. - Exposure to SQL and relational databases; ability to write and interpret simple queries. - Strong general technical aptitude and troubleshooting skills. - Excellent verbal and written communication abilities. - Ability to explain technical concepts to non-technical users with patience and clarity. - Professional and articulate phone presence. - Comfortable working independently and as part of a team in a dynamic environment. Preferred Qualifications - Associate degree in computer science, information technology, or a related field. - Experience using Microsoft SQL Server Management Studio (SSMS). - Proficiency in the Microsoft Office Suite, especially Excel and Outlook. - Familiarity with API/technical documentation and data mapping. - CRM system experience (e.g., Salesforce, HubSpot, or similar). - Strong organizational skills and the ability to manage shifting priorities and interruptions. You’ll Thrive in This Role If You... - Enjoy solving technical problems and developing creative solutions. - Communicate confidently with both technical and non-technical audiences. - Comfortable working across teams and balancing multiple tasks. - Take pride in delivering excellent customer service with urgency and empathy. - Adapt quickly to change and value continuous learning.
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ClouderaAt Cloudera, we believe that data can make what is impossible today, possible tomorrow.
• Collaborate with Data Architects, Operational Architects, and Data Analysts to understand the data and operational requirements across different business units. • Partner with data owners to ensure seamless, reliable data ingestion for both traditional analytics and GenAI-powered applications. • Master "Vibe Coding" and AI-orchestrated development to accelerate the delivery of new data pipelines and GenAI applications, reducing the end-to-end development lifecycle from days to hours. • Develop and implement data transformations to enrich and provision data, following established specifications and standards while utilizing AI-first workflows. • Design and implement robust system architectures for real-time, near real-time, and batch processing data flows to meet the operational demands of complex business systems. • Design and deploy GenAI-powered "Self-Service" tools, including automated documentation generators and natural language interfaces, to empower business users and reduce routine engineering requests. • Implement monitoring and CI/CD automation processes to track data quality and ensure the reliability of AI-supported data services. • Standardize AI-first engineering workflows across the team to ensure high-quality, auto-validated, and well-documented code delivery.
• Perform technical and business tasks from analysts related to our core tools • Participate in code reviews of analysts and identifying suboptimal processes • Monitor load and alerts from our services • Interact with DevOps team on our services and support tasks • Maintain security and compliance standards


