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Senior ai full stack engineer

Enreap · Maharashtra, India

FULL TIMEpermanent

Job Description

Own the full lifecycle of Gen AI-powered products — from model & RAG integration to production-grade full-stack delivery.

Experience · 3–5 years

Function: Engineering-AI+Full Stack

We're building Gen AI-powered applications that combine large language models, retrieval systems, and cloud-native infrastructure. We're looking for an engineer who can own the full lifecycle — from model and RAG integration through to production-grade full-stack development — and ship independently with minimal oversight.

What You'll Do:

— Design and build end-to-end architecture for AI-powered applications, from UI through backend to cloud infrastructure.

— Develop RAG pipelines, integrate LLMs, and build MCP-based agentic workflows.

— Build responsive, production-quality front-end interfaces using React.

— Develop and maintain backend services and APIs using Node.js and Python.

— Deploy, scale, and monitor AI workloads on AWS.

— Evaluate and monitor LLM/RAG output quality in production.

— Partner closely with product, design, and QA to translate requirements into shipped features.

— Troubleshoot independently and propose solutions — not just surface problems.

Must-Have Skills:

3–5 years in software / full-stack development. Proficiency in Python.

Full Stack Development:

Proficiency in React, Java Script/Type Script, HTML, and CSS. Backend development with Node.js and RESTful API design. SQL/No SQL databases, Git, and version control (Git Hub or Bitbucket).

AI & NLP:

Strong NLP foundation: tokenization, preprocessing, POS tagging, NER, vectorization (Bo W, TF-IDF, Word2 Vec/embeddings). Solid grasp of transformer architecture (self-attention, multi-head attention, positional encoding) and how LLMs are trained. Hands-on experience building RAG systems, including hybrid search. Prompt engineering — designing, testing, and iterating on prompts for production. Vector databases (FAISS, Chroma DB, or Pinecone). Working knowledge of Lang Chain and MCP (Model Context Protocol).

Cloud-AWS/Atlassian:

Practical experience with core AWS services: Lambda, Bedrock, Dynamo DB, and IAM. Hands-on experience with the Atlassian platform (Jira / Confluence

/ JSM).

• Experience integrating with Atlassian REST APIs and app development (Forge or Connect).

Soft Skills:

Excellent written and verbal communication skills. Ability to work independently and drive problems to resolution.

Good to Have — a strong candidate need not check every box.

Lang Graph, Crew AI, Auto Gen, or similar frameworks for stateful, multi-agent applications. LLM/RAG evaluation and observability tooling (e.g., RAGAS, Lang Smith). Fine-tuning experience (Lo RA/QLo RA, quantization) on open models such as Gemma. Atlassian Forge platform (UI Kit / Custom UI, resolvers, manifest.yml, Forge Storage/SQL). Jira / Confluence / JSM REST APIs and OAuth 2.0 app scopes. Sage Maker, EC2, Cognito, or S3. Containerization and CI/CD (Docker, Git Hub Actions, or equivalent). API security — rate limiting, input validation, prompt-injection mitigation for LLM-facing endpoints. Unit testing experience (Jest or equivalent).

Details

CompanyEnreap
LocationMaharashtra, India
TypeFULL TIME
Nichetech
Experiencepermanent

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