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Trust IT LLC

Azure AI Architect

Trust IT LLC, Dallas, Texas, United States, 75202

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Job Description •⁠ ⁠Architect and integrate hybrid Al systems using Azure Machine Learning, Cognitive Services, and OpenAl, combining traditional ML, deep learning, target language models (LLMs), and retrieval-augmented generation (RAG) pipelines.

A high number of candidates may make applications for this position, so make sure to send your CV and application through as soon as possible.

•⁠ ⁠Design and deploy scalable Al architectures on Azure, including APis, microservices, and model-serving frameworks, ensuring seamless integration with analytics, simutation, and operational systems.

•⁠ ⁠Lead the full Al/ML lifecycle on Azure-including data ingestion (Azure Data Factory, Azure Synapse), feature engineering, training, deployment, and ongoing sustainment within secure cloud environments (such as Azure Government and IL5/IL6 compliance).

•⁠ ⁠Engineer event-driven data pipelines and feature stores for structured and unstructured data (text, imagery, simulation outputs) leveraging Azure Data Lake, Event Hubs, and Databricks.

•⁠ ⁠Ensure Responsible Al practices by embedding traceability, explainability, and confidence scoring using Azure Responsible Al toolkits and frameworks.

•⁠ ⁠Understanding of MLOps pipelines with Azure Machine Learning, MLflow, and Azure Kubernetes Service (AKS) to support CI/CD, retraining, and drift detection.

•⁠ ⁠Transition R&D prototypes to production on Azure, optimizing deployments for constraints such as limited compute, edge environments (Azure loT Edge), or disconnected operations.

•⁠ ⁠Provide technical leadership and mentorship, establishing standards for model quality, architecture, and ethical Al deployment across Azure-based programs.

•⁠ ⁠Collaborate across engineering, data, and modeling teams to unify Al solutions, ensuring interoperability and reuse within Azure's ecosystem. xmvmafu

•⁠ ⁠Support proposal and solution development by providing technical expertise in Azure Al/ML architectures, data strategies, and Responsible Al assurance frameworks.