AI Automation Developer


Everest Technologies
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Job Details
Skills
- API
- Artificial Intelligence
- Autogen
- C#
- Cloud Computing
- Continuous Delivery
- DevOps
- Frontend Development
- GRID
- Generative Artificial Intelligence (AI)
- Flask
- Git
- GitHub
- Java
- JavaScript
- Microservices
- LlamaIndex
- Microsoft Azure
- Open Source
- Orchestration
- PostgreSQL
- React.js
- Python
- SQL Azure
Summary
Role Summary
We are looking for an experienced Senior AI & Full-Stack Automation Engineer to design, build, and deploy high-impact, AI-powered applications and enterprise automation solutions using Microsoft Azure, Full-Stack Web Technologies, and Generative AI.
In this role, you will bridge the gap between user-facing front-end web interfaces, robust back-end APIs, and cutting-edge Retrieval-Augmented Generation (RAG) architecture. You will own the full product lifecycle—from designing intuitive front-end AI interactions and backend orchestration to integrating Azure OpenAI, vector search databases, and cloud-native automation workflows.
Key Responsibilities
1. LLM & RAG Architecture Engineering
RAG System Design: Architect and deploy enterprise Retrieval-Augmented Generation (RAG) pipelines on Azure, utilizing Azure AI Search (formerly Cognitive Search) or vector databases (pgvector, Pinecone, Qdrant) for hybrid search, semantic ranking, and document chunking.
Azure OpenAI Integration: Develop and tune generative AI capabilities using Azure OpenAI Service (GPT-4/GPT-4o, embedding models), implementing system prompting, function calling/tooling, and multi-agent coordination frameworks (LangChain, Semantic Kernel, LlamaIndex, or AutoGen).
LLMOps & Evaluation: Establish continuous evaluation metrics (measuring hallucination, faithfulness, context relevancy), guardrails (Azure AI Content Safety), and token/cost optimization strategies.
2. Back-End Microservices & Automation
API Development: Design, build, and maintain scalable RESTful and Event-Driven APIs using Python (FastAPI/Flask) or Java, SpringBoot
Serverless & Workflow Orchestration: Build serverless automation pipelines and data ingestion streams using Azure Functions, Azure Logic Apps, and Event Grid.
Database Management: Structure relational data models and vector repositories to maintain high performance and low-latency response times.
3. Front-End Development & User Experience
Interactive AI Interfaces: Build intuitive, responsive front-end user interfaces using React, Next.js, or TypeScript/JavaScript.
Real-time UX Patterns: Design streaming chat interfaces (Server-Sent Events/WebSockets), document viewer integrations, citation callouts, and human-in-the-loop review dashboards to allow business users to inspect and refine AI outputs.
4. Delivery, Security & Cloud Engineering
Collaborate with business stakeholders and product leaders to identify manual operational bottlenecks and convert them into automated AI workflows.
Enforce security, data privacy, and governance standards (Azure RBAC, Key Vault, VNet integration).
Implement CI/CD automation and infrastructure monitoring using Git, Azure DevOps, and cloud telemetry tools.
Qualifications
Required Experience:
Overall Experience: 3+ years in full-stack software development, cloud automation, or AI engineering.
Generative AI & RAG: Hands-on experience building and deploying RAG architectures, semantic retrieval, vector search, and LLM applications using Azure OpenAI or related APIs.
Back-End Expertise: Proficiency in Python or C# (.NET Core), with strong expertise in API design, microservices, and asynchronous programming.
Front-End Expertise: Proficiency in modern client-side frameworks (React, Next.js, or TypeScript) to build user-facing web applications.
Azure Ecosystem: Practical experience with Azure AI Services, Azure AI Search, Azure Functions, Logic Apps, and database systems (Azure SQL, Cosmos DB, or PostgreSQL).
DevOps: Experience with Git, Docker, CI/CD pipelines, and Azure DevOps or GitHub Actions.
Preferred / Bonus Skills:
Experience with framework orchestrators like Microsoft Semantic Kernel, LangChain, or AutoGen.
Familiarity with enterprise data connectors and document parsing libraries (e.g., Unstructured, Azure AI Document Intelligence).
Microsoft Azure Certifications (e.g., Azure AI Engineer Associate, Azure Developer Associate).
Knowledge of fine-tuning open-source models or applying agentic workflows in business process automation.
- Dice Id: 10197017
- Position Id: 9061628
- Posted 2 hours ago
Company Info
About Everest Technologies
Made For Your Business
Accelerating Digital Transformation
At our company, we empower enterprises to embrace a digital future by providing top-notch quality engineering talent, extensive industry knowledge, and tailored solutions that address specific business needs.
Emphasizing Scale and Excellence
Our approach to DevOps and automation emphasizes the development of scalable and standardized delivery processes that utilize cutting-edge technologies. This allows our clients in the retail and supply chain industries to create data-driven businesses and next-generation services.
Fostering Collaborative Partnerships
We believe in fostering strong partnerships with our clients, working closely with them as an extension of their support team. Together, we create innovative tools that are both cost-effective and cloud-enabled, including cloud-based services and decision intelligence for application services.
OUR CULTURE
Fueled by Innovation
At our company, we are driven by a passion for innovation and a desire to create industry-leading software solutions, cutting-edge technological experiences, and unparalleled expertise in engineering processes.


Abhilash Patnaik
Everest Technologies Recruiter @ Everest TechnologiesSimilar Jobs
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