Java Fullstack Architect

Bounteous

Bengaluru

On-site

INR 4,000,000 - 7,000,000

Full time

4 days ago
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Job summary

Bounteous India is seeking a Java Fullstack Architect with AI expertise to design scalable enterprise solutions, blending Java backend, microservices, cloud, and front-end frameworks.

You will lead AI-enabled features, collaborate with data science teams, ensure performance, security, and maintainability, and guide teams through modern engineering patterns across AWS/GCP/Azure.

Qualifications

  • Understanding of ML lifecycle: model training, evaluation, deployment, monitoring.
  • Hands-on experience with Python-based ML frameworks (nice to have): PyTorch, TensorFlow, Scikit-learn
  • Experience with RAG architecture, embeddings, or LLM orchestration frameworks such as LangChain, Semantic Kernel, Haystack
  • Ability to design MLOps workflows (CI/CD for models, model versioning, drift detection).
  • Practical experience building AI-driven features in enterprise applications.

Responsibilities

  • Own end-to-end architecture across backend, frontend, data, integrations, and AI components.
  • Define standards for microservices, APIs, UI architecture, and AI/ML integration patterns.
  • Conduct architectural reviews and establish guidelines for high-quality, scalable solutions.
  • Architect and build microservices using Java 11+/Spring Boot, Spring Cloud, and cloud-native services.
  • Design event-driven systems, asynchronous patterns, and high-performance data pipelines.
  • Integrate AI inference services (REST, gRPC, model-serving APIs).
  • Collaborate with data science teams to productionize ML models (MLOps practices).
  • Work with cloud AI services (AWS, Azure, GCP) such as Bedrock/SageMaker.
  • Architect vector databases, embeddings, and RAG pipelines.
  • Ensure ethical AI use, security, guardrails, and compliance.

Skills

Angular/React
Node/TypeScript
AI/ML integration
MLOps CI/CD
Cloud (AWS/Azure/GCP)
Microservices
Docker/Kubernetes
Python ML basics
LLM orchestration
Security/compliance

Education

Bachelor's or Master's in Computer Science or related field

Tools

MongoDB
Cassandra
Pinecone/Redis Vector/Milvus
LangChain
Haystack

Job description

The Java Fullstack Architect (with AI Expertise) is responsible for architecting modern, scalable fullstack solutions while integrating AI/ML capabilities across enterprise applications. This role blends deep fullstack engineering knowledge (Java, microservices, cloud, front-end frameworks) with hands-on experience designing and deploying AI-powered features such as intelligent automation, predictive analytics, NLP, and generative AI components. The architect will guide teams to adopt AI-driven patterns while ensuring performance, security, and maintainability.

2. Key Responsibilities
  • Own end-to-end architecture across backend, frontend, data, integrations, and AI components.
  • Define standards for microservices, APIs, UI architecture, and AI/ML integration patterns.
  • Conduct architectural reviews and establish guidelines for high-quality, scalable solutions.
  • Architect and build microservices using Java 11+/Spring Boot, Spring Cloud, and cloud-native services.
  • Design event-driven systems, asynchronous patterns, and high-performance data pipelines.
  • Integrate AI inference services (e.g., REST, gRPC, model-serving APIs).
  • Collaborate with data science teams to productionize ML models (MLOps practices).
  • Work with cloud AI services (AWS, Azure, GCP) such as:
  • AWS Bedrock/SageMaker
  • Architect vector databases, embeddings, and retrieval-augmented generation (RAG) pipelines.
  • Ensure ethical AI use, security, guardrails, and compliance.
Frontend Engineering
  • Design modular, scalable UIs using Angular/React with strong state management.
  • Integrate AI-powered UI features (e.g., copilots, predictive fields, intelligent search).
  • Ensure seamless front-end consumption of microservices and AI APIs.
  • Architect cloud-native deployments on AWS/Azure/GCP.
  • Design CI/CD pipelines supporting microservices and ML models.
  • Implement containerization using Docker/Kubernetes, including GPU workloads where required.
  • Mentor fullstack and AI engineers in architecture principles and modern engineering patterns.
  • Work closely with product, data science, UX, and security teams.
  • Translate business needs into practical AI-enabled technical solutions.
3. Required Skills & Experience
Core Technical Skills
Frontend:
  • Angular/React, Node, TypeScript, HTML, CSS
Cloud:
Database:
  • Relational + NoSQL (MongoDB, Cassandra), vector DBs (Pinecone, Redis Vector, Milvus—preferred)
AI/ML Skill Requirements
  • Understanding of ML lifecycle: model training, evaluation, deployment, monitoring.
  • Hands-on experience with Python-based ML frameworks (nice to have):
  • PyTorch, TensorFlow, Scikit-learn
  • Experience with RAG architecture, embeddings, or LLM orchestration frameworks such as:
  • LangChain, Semantic Kernel, Haystack
  • Ability to design MLOps workflows (CI/CD for models, model versioning, drift detection).
  • Practical experience building AI-driven features in enterprise applications.
Soft Skills
  • Strong communication and leadership.
  • Ability to translate AI concepts into business value.
  • Deep problem-solving and solutioning mindset.
4. Preferred Qualifications
  • Bachelor’s or Master’s in Computer Science or related field.
  • Certifications:
  • Generative AI / ML certifications (preferred)
  • Java Architecture certifications
  • Experience with data engineering pipelines, ETL, or streaming platforms (Kafka).
  • Exposure to privacy, responsible AI, and security frameworks.
5. Key Performance Indicators (KPIs)
  • Quality and scalability of AI-integrated architecture.
  • Adoption of AI/ML features across products.
  • Reduction in latency, cost, and technical debt.
  • Successful production deployment of AI/ML workloads.
  • Developer enablement through frameworks and best practices.
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