Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
United States
Posted
21 hours ago
MicroservicesSQLMLOpsMachine LearningNumPyScikit-learnAzureGenerative AILLMPandasPostgreSQLPyTorchPythonRESTRedisTensorFlowVault
Job Description
Must have :- Python + Data Science/ML + GenAI/LLMs + Agentic AI + RAG + Azure/Azure OpenAI + Enterprise APIs/Integration + PostgreSQL/SQL + AI Evaluation/Observability + Production/MLOps experience, preferably within manufacturing/consumer goods/supply chain.
We are looking for an Applied AI Engineer who can design, develop, evaluate, and deploy production-ready AI/ML solutions for enterprise applications in a consumer goods/manufacturing environment.
Must-Have Skills:
- Strong Python development experience for AI/ML, data science, and applications.
- Strong Data Science & Machine Learning knowledge: data preparation, feature engineering, statistics, experimentation, model selection/validation, classification, regression, clustering, ranking, model evaluation, drift monitoring, and MLOps.
- Hands-on experience with PyTorch, TensorFlow, scikit-learn, pandas, and NumPy.
- Strong experience building Generative AI / LLM applications.
- Hands-on Agentic AI development: AI agents, tool/function calling, multi-step workflows, orchestration, state/memory, human-in-the-loop, approvals, retries, and guardrails.
- Strong experience with RAG, embeddings, semantic search, vector databases, and enterprise knowledge retrieval.
- Strong prompt engineering, context engineering, structured outputs, AI evaluation, observability, tracing, and debugging.
- Ability to evaluate AI solutions for accuracy, reliability, hallucination, latency, cost, safety, and business impact.
- Strong understanding of traditional ML vs. LLM-based solutions and when to use each.
Enterprise & Integration:
- Experience integrating AI with enterprise APIs, databases, messaging systems, and business applications.
- Strong REST API, SQL, relational database, PostgreSQL, and application data-model knowledge.
- Understanding of synchronoasynchronous integrations, event-driven architecture, messaging, caching, state management, microservices, and distributed systems.
- Experience securely connecting AI agents to enterprise systems using authentication, authorization, IAM, APIs, and controlled tool access.
Azure / Cloud:
- Hands-on experience deploying AI solutions in Microsoft Azure.
- Strong exposure to Azure OpenAI, Azure AI Services, API Management, Service Bus, Event Hubs, Azure Database for PostgreSQL, Entra ID, Key Vault, Azure Monitor, and Application Insights.
- Experience with containers, cloud-native applications, CI/CD, automated deployments, and production monitoring.
- Ability to move AI solutions from POC/experimentation to secure, scalable production.
AI Engineering:
- Experience with AI orchestration frameworks/SDKs and single-agent/multi-agent architectures.
- Understanding of deterministic vs. probabilistic systems.
- Experience implementing guardrails, validation, retries, approval workflows, human oversight, AI observability, and cost/token optimization.
- Knowledge of model latency, model selection, token usage, AI cost optimization, MLOps/LLMOps.
Industry Experience:
- Experience in consumer goods, manufacturing, supply chain, distribution, or similar industries.
- Ability to translate business/operational problems into practical AI solutions.
- Experience working with product, order, customer, manufacturing, supply-chain, and master data.
- Familiarity with ERP, MES, WMS, order management, or shop-floor systems.
Preferred:
- SAP / S4HANA / SAP BTP / SAP CPI / SAP MDG experience.
- AI/ML experience in manufacturing, product configuration, order management, forecasting, quality, or supply chain.
- Redis/distributed caching, vector search, AI evaluation/observability platforms.
- AI-assisted development tools such as OpenAI Codex, Claude Code, or GitHub Copilot.
- Experience taking AI solutions from POC → production → operational support.
- Strong English communication skills for documentation, technical discussions, and stakeholder interaction.
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