The AI Software Engineer will design, develop, and implement AI-enabled solutions that support data management, governance, and automation initiatives across enterprise workstreams. This role is responsible for building scalable AI applications and services that deliver metadata enrichment, data profiling, anomaly detection, duplicate detection, rule recommendations, remediation support, and intelligent automation within an approved sovereign AI environment.
The ideal candidate combines strong software engineering practices with expertise in AI/ML, Generative AI, and data engineering to deliver production-grade AI solutions.
Key Responsibilities
AI Solution Development
Design, develop, test, and deploy AI-powered applications and microservices.
Build scalable AI and machine learning solutions to automate business and data management processes.
Develop reusable AI frameworks, APIs, and services for enterprise-wide adoption.
Optimize AI models and applications for performance, reliability, and scalability.
Metadata Enrichment & Data Intelligence
Develop AI-driven metadata enrichment capabilities to improve data discoverability and governance.
Build intelligent data profiling solutions to identify patterns, quality issues, and data relationships.
Implement automated classification and tagging mechanisms for enterprise datasets.
Anomaly & Duplicate Detection
Design and implement machine learning models for anomaly detection and data quality monitoring.
Develop duplicate detection and entity-matching algorithms to improve data consistency.
Continuously evaluate and enhance model accuracy and effectiveness.
AI-Assisted Rule Recommendation & Remediation
Build AI capabilities that suggest and optimize data quality rules.
Implement recommendation engines that assist users in resolving data issues.
Develop intelligent remediation workflows and automated corrective actions.
Generative AI & Automation
Develop LLM-powered solutions and AI agents to streamline business processes.
Implement prompt engineering, retrieval-augmented generation (RAG), and AI workflow orchestration.
Integrate Generative AI services into enterprise applications and platforms.
Sovereign AI & Compliance
Ensure AI solutions operate within approved sovereign AI and security environments.
Follow responsible AI, privacy, governance, and compliance standards.
Implement security controls, monitoring, and auditability for AI applications.
Collaboration & Delivery
Work closely with solution architects, data engineers, product owners, and business stakeholders.
Translate business requirements into technical AI solutions.
Participate in code reviews, testing, deployment, and production support activities.
Maintain technical documentation and promote engineering best practices.
Required Qualifications
Bachelors or Masters degree in Computer Science, Artificial Intelligence, Software Engineering, Data Science, or a related field.
5+ years of software engineering experience with at least 2+ years developing AI/ML solutions.
Experience delivering enterprise-scale AI applications in production environments.
Strong understanding of software development lifecycle (SDLC), CI/CD, and DevOps practices.
Technical Skills
Programming & Engineering
Python (mandatory)
Java, C#, or Node.js
REST APIs and Microservices Architecture
Git, DevOps, CI/CD Pipelines
AI & Machine Learning
Scikit-learn, TensorFlow, PyTorch
Machine Learning Model Development and Deployment
Anomaly Detection and Pattern Recognition
NLP and Text Analytics
Generative AI
Azure OpenAI Service / OpenAI APIs
Large Language Models (LLMs)
Prompt Engineering
Retrieval-Augmented Generation (RAG)
AI Agents and Workflow Automation
Data Technologies
SQL and NoSQL Databases
Data Profiling and Data Quality Frameworks
Data Governance and Metadata Management Tools
ETL/ELT and Data Engineering Concepts
Cloud & Platforms
Microsoft Azure (Preferred)
Azure AI Foundry
Azure Machine Learning
Azure Databricks
Containerization (Docker/Kubernetes)
Preferred Qualifications
Experience working in regulated, government, or sovereign cloud environments.
Knowledge of data governance, data quality, and master data management.
Microsoft Azure AI Engineer Associate (AI-102) or equivalent certification.
Experience implementing Responsible AI and AI Governance frameworks.
Key Competencies
Strong software engineering and system design skills.
Problem-solving and analytical thinking.
Ability to translate business needs into AI solutions.
Effective stakeholder communication.
Innovation mindset with focus on automation and continuous improvement.
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