AI Analyst/ Engineer
Position Summary
The AI Analyst / Engineer will spearhead Mercy’s institutional AI strategy by driving AI literacy, integration, and innovation across academic, administrative, and operational domains. This role will act as a bridge between IT, faculty, and leadership, defining use cases, embedding AI capabilities into core systems, ensuring governance, and scaling pilots into enterprise-wide deployments. The ideal candidate combines technical fluency in AI/ML, systems integration, and APIs with strong communication and change-management skills to foster adoption across the institution.
Key Responsibilities
- Lead development and execution of Mercy’s AI roadmap, aligning with institutional goals and IT architecture
- Serve as primary liaison to academic divisions, faculty, and administrative offices to gather requirements, co-design AI solutions, and prioritize use cases
- Design, build, and maintain AI/ML models, pipelines, and integrations (e.g., with ERP, LMS, SIS, workflow engines)
- Package and deliver AI tools to faculty, staff, and students (e.g. writing assistants, advising bots, summarization, analytics)
- Advocate and deliver AI literacy, training, and best practices across campus—prepare workshops, tutorials, guides, and office hours
- Establish governance practices and guardrails: data privacy, bias mitigation, model explainability, compliance (FERPA, HIPAA, etc.)
- Monitor and evaluate AI tool performance, usage metrics, ROI, and risks; iterate on improvements
- Collaborate with third-party AI vendors, cloud providers, and solution integrators—manage relationships, contracts, APIs, and SLAs
- Stay current with AI research, open-source tools, and industry best practices—evaluate and pilot novel technologies
Required Qualifications
- Bachelor’s degree in Computer Science, Data Science, Engineering, or related field (Master’s preferred)
- 3+ years of hands-on experience with AI/ML, data pipelines, APIs, and system integration
- Proficiency in Python, SQL, and common ML frameworks (e.g. PyTorch, TensorFlow, scikit-learn)
- Experience with cloud platforms (e.g. AWS, Azure, GCP) and MLOps tooling (e.g. Docker, Kubernetes, MLflow)
- Strong communication skills and ability to translate technical concepts to non-technical stakeholders
- Experience designing and executing training programs or workshops
- Understanding of data privacy, ethics, bias mitigation, and regulatory compliance in higher ed
- Demonstrated project management skills and ability to lead cross-functional teams
Preferred Qualifications
- Experience working in higher education or with educational technologies (LMS, SIS, etc.)
- Familiarity with large language models (LLMs), prompt engineering, and generative AI
- Prior experience with AI adoption programs, diffusion of innovation, or change management
- Experience building conversational agents, knowledge graphs, or document retrieval systems
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