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AI​/ML Architect

Job in Hartford, Hartford County, Connecticut, 06112, USA
Listing for: Saransh Inc
Full Time position
Listed on 2026-01-16
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below

Job Title: AI/ML Architect

Work Location: Hartford, CT

Duration: Longterm

Job Description

We are seeking a highly experienced Solution Architect to lead the design and implementation of patient solution systems within a pharmaceutical or life sciences environment. The ideal candidate will have a strong background in Salesforce Marketing Cloud, .NET, TIBCO, API integrations, and Adobe Experience Manager (AEM).

We are seeking a Senior AI Architect to lead the design, development, and governance of cutting‑edge AI solutions. This role requires both hands‑on technical expertise and strategic leadership—driving innovation while ensuring compliance, security, and scalability across our AI ecosystem.

Key Responsibilities
  • AI Leadership & Strategy: Lead our end‑to‑end AI development—balancing hands‑on model design and implementation with guiding and mentoring the broader AI engineering and research teams.
  • Architecture, Design, and Deployment: Design, build, and deploy production‑grade machine learning models—including LLMs—on the Google Cloud Platform (Vertex AI) using Python and related frameworks.
  • Collaboration & Ecosystem Management: Partner closely with internal AI teams, Google, and other technology vendors to sustain momentum, drive innovation, and align with evolving best practices.
  • Governance, Security, and AIRB Compliance: Own and execute AI governance processes, including AI Risk Board (AIRB) reviews, data security, compliance, and ethical AI considerations across all AI initiatives.
  • Model Development & Evaluation: Design and implement models for Conversational AI, leveraging Google CCAI/CES components. Lead model evaluation using robust evaluation frameworks and metrics to ensure reliability, accuracy, and fairness.
  • Advanced Architectures: Apply agentic architectures and Retrieval Augmented Generation (RAG) to build intelligent, context‑aware AI systems. Experience with Parameter Efficient Fine‑Tuning (PEFT) is a plus.
  • Performance & Scalability: Optimize and fine‑tune models for performance, efficiency, scalability, and accuracy across production workloads.
  • Cross‑Functional

    Collaboration:

    Work with business stakeholders and engineering teams to translate complex business problems into scalable and efficient AI‑driven solutions.
  • Continuous Innovation: Stay ahead of emerging trends in AI/ML, LLMs, and MLOps to continuously enhance solution quality and team capability.
  • Customer & Partner Engagement: Collaborate directly with customer technical experts and partners (e.g., Google) to design solutions that meet business goals and compliance requirements, demonstrating technical and business maturity.
Qualifications
  • Advanced hands‑on experience in Machine Learning, LLMs, and MLOps.
  • Proven expertise in Google Vertex AI, Python, and Google CCAI/CES platforms.
  • Deep understanding of AI governance, AIRB, security, and responsible AI principles.
  • Experience in model evaluation frameworks, agentic architectures, and RAG pipelines.
  • Strong communication and collaboration skills for engaging with cross‑functional teams, vendors, and stakeholders.
  • Demonstrated ability to balance innovation with operational rigor in production‑grade AI environments.
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