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hirist

AI/ML Backend Engineer - Java

HR Works Consultancy
4 - 7 Years
Multiple Locations

Posted on: 06/06/2026

Job Description

Key Responsibilities :

- Design and build pluggable evaluator services using Java and Spring Boot

- Develop scalable SaaS/cloud-native backend services and microservices

- Integrate with AI platforms including AWS Bedrock, Azure AI Foundry, Google Vertex AI, OpenAI, and Anthropic APIs

- Build orchestration frameworks and schedulers for evaluation execution workflows

- Develop AI risk scoring systems and evaluation pipelines

- Design and implement telemetry, monitoring, and observability solutions

- Build dashboards and reporting systems for evaluation results and governance insights

- Develop integrations/connectors for cloud-native event streams and event-driven architectures

- Collaborate with cross-functional engineering teams in an Agile sprint environment

- Participate in code reviews, CI/CD setup, and quality engineering practices

- Ensure adherence to software development lifecycle and engineering best practices

Ideal Candidate :

- Must have 4+ years of experience in production-grade backend engineering experience in Java and Spring Boot, designing scalable enterprise services and microservices (development roles, not support/maintenance)

- Must have significant hands-on AI integration experience as a core part of recent work building Java services that integrate with AI platforms (AWS Bedrock, Azure OpenAI / AI Foundry, Google Vertex AI, OpenAI or Anthropic APIs) at the SDK/API level.

- Must have proven experience building SaaS / cloud-native applications with strong REST API and microservices architecture expertise.

- Must have strong SDLC and quality engineering discipline unit/integration testing and CI/CD (GitHub Actions, Jenkins or similar).

- Must have experience with event streaming / event-driven architecture (Kafka, Kinesis, Event Hub or Pub/Sub).

- Experience with AI evaluation/testing or LLM eval frameworks (RAGAS, TruLens, DeepEval), AI risk scoring, or evaluation pipelines.

Preferred (Certification) :

- Cloud certifications (AWS, Azure or GCP), and orchestration frameworks (Quartz, Spring Batch)

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