Agentic AI Solution Architect
Why This Role Stands Out
This hybrid role offers a fantastic opportunity to architect cutting-edge AI solutions, driving innovation within a reputable tech company. You'll thrive here if you possess a strong background in AI/ML and a passion for developing advanced models, with the flexibility to blend in-office collaboration and remote work. Apply today to shape the future of agentic AI!
Quick Overview
Job Description
Job Title: Agentic AI Solution Architect
Duration: Full time
Over View:
· Bachelor’s or Master’s degree in Computer Science, AI/ML, Data Science, or related field
· Advanced coursework or certifications in machine learning, deep learning, or NLP
· Strong mathematical and statistical foundation
Experience
· 6–10 years of experience in AI/ML/Deep Learning model development
· 2-3 years Hands-on experience with LLMs, NLP, or speech/voice AI systems
· 3-5 years of experience deploying AI solutions in production environments
Primary (Must have skills)
· 5+ years of experience in Python, PyTorch, TensorFlow, or similar frameworks
· 3-5 years of experience designing, training, and fine-tuning large language models or AI models, speech/voice AI systems, Realtime voice pipeline
· 5 years of experience in cloud AI platforms (AWS Sagemaker, Azure ML, Google Cloud Platform AI)
· 2+ years of experience in Agentic AI frameworks such as LangChain, LangGraph, A2A, MCP, and Multi agent orchestration
· 2-3 years of experience Familiarity with model evaluation metrics, bias detection, and optimization
· 5 years of experience in integrating AI models into applications via APIs or pipelines
· 2-3 years’ experience in Azure services — Azure AI Speech and Translator, Azure OpenAI, AI Search, plus Container Apps/AKS, API Management, Event Hubs, Key Vault, and Application Insights
Key technical skills:
· Design, develop, and deploy advanced AI models to meet business requirements
· Collaborate with data engineers, LLM Ops, and software teams for end-to-end solutions
· Evaluate model performance, fine-tune, and ensure scalability and reliability
· Research emerging AI/ML technologies and propose innovative solutions
· Mentor junior AI engineers and review code/models for best practices
Secondary Skills:
· Advanced LLM techniques, prompt engineering, and fine-tuning strategies
· AI ethics, fairness, and responsible AI deployment
· Continuous learning on emerging AI frameworks and architectures
· LLMOps - layered evals (WER, entity F1, COMET), CI regression gates, tracing, cost-per-minute telemetry, model routing, and drift detection.
Skills
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