Senior Software Architect - Data Platform & AI/ML
- Define end-to-end data platform architecture from data ingestion through GenAI development by translating business requirements into technical solution designs and implementation roadmaps
- Implement scalable architecture for AI solutions spanning machine learning, natural language processing, multimodal AI, and agentic systems
- Architect multi-layer data transformation pipelines and design data models optimized for analytics and AI/ML workloads including dimensional schemas, feature stores, and aggregate tables
- Build production-grade transformation code that converts raw operational data into trusted, analytics-ready datasets; implement incremental loading, schema evolution, and backward compatibility
- Establish data quality and observability frameworks including automated validation, schema drift detection, lineage tracking, and data cataloging to support discoverability and trust
- Ensure data architecture aligns with enterprise standards, cybersecurity requirements, data governance policies, and compliance obligations
- Design and implement data security architecture; define access controls, data classifications, and retention policies that meet company compliance policies
- Establish development workflows-branching strategies, pull request standards, code review processes, and deployment procedures
- Build CI/CD pipelines for analytics applications and data transformations; implement automated testing, security scanning, and deployment automation
- Build monitoring and alerting for both data pipelines and applications-tracking failures, performance, costs, and user issues
- Define, build, and evolve AI-powered software products that accelerate operations including LLM applications, machine learning models, and intelligent automation for supply chain optimization
- Develop Model Context Protocol (MCP) servers that package domain-specific AI capabilities for reuse across the enterprise
- Package AI/ML models as robust, well-documented APIs that enable seamless integration into dashboards, applications, and operational workflows
- Develop backend APIs and services that power analytics applications; implement authentication, authorization, caching, and performance optimization
- Create reusable UI components and application templates that accelerate solution development; establish design patterns and code standards for application development
- Mentor junior developers on software engineering best practices, application development patterns, and data modeling
- Conduct code reviews for team contributions; provide feedback on code quality, performance, security, and maintainability
- Provide technical guidance on solution optimization and application architecture
- Create training materials and documentation that enable the team to build applications independently
- Bachelor's Degree in Computer Science, Software Engineering, Data Science, or related field from an accredited university
- A minimum of 3+ years of hands-on experience in software architecture, including building data platforms, pipelines, or applications in production environments AND 2+ years building or integrating AI/ML models, applications, or intelligent features
- Write production-quality code that meets standards and delivers intended functionality using the most appropriate technologies for the project (e.g., Python, Java, C#, TypeScript-based on system needs)
- Experience building and implementing cloud data platforms; understanding of data architecture, ETL/ELT patterns, and data management best practices. Proven experience with cloud data warehouses/lakehouses (Databricks, Snowflake, BigQuery, Redshift)
- Expert-level SQL, query optimization, and performance tuning
- Expertise in development platforms and services: AWS, Visual Studio, Databricks, GitHub, etc.
- Experience implementing security frameworks, access controls, and deployment automation
- Familiarity with ML workflows, feature engineering, and model deployment; able to integrate AI/ML into applications
- Experience with prompt design, LLM orchestration, and agentic workflows / multi-agent systems
- Experience building solutions for supply chain, manufacturing, maintenance, or operations is a strong plus
- Understands business metrics and can translate platform capabilities into quantifiable business outcomes (cost savings, time reduction, forecast accuracy improvement)
- Skilled in breaking down ambiguous problems, writing clear problem statements, and estimating model development effort accurately
- Stays current on AI/ML and cloud platform industry trends (LLM advancements, new frameworks, emerging techniques); brings practical innovations backed by proof-of-concepts
- Leads by example through delivering AI/ML products and platform engineering while mentoring team on AI integration, prompt engineering, and model usage
- Able to work through ambiguity and drive alignment between AI capabilities and business needs; communicates model limitations, confidence intervals, and uncertainty clearly to non-technical stakeholders
- Continuously measures solutions against user expectations while balancing competing priorities and maintaining build quality
- Strong written and verbal communication skills with the ability to explain complex AI/ML concepts simply and translate effectively between data scientists, software engineers, and business stakeholders
- Effective collaborator who works seamlessly with BI developers, AI engineers, and business stakeholders
- Business-minded approach that focuses on operational metrics, user needs, and business impact while designing AI and platform solutions that solve real problems rather than technical exercises
- Persists to completion by driving products through deployment, monitoring, and iteration while taking ownership of model performance and continuously improving accuracy
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