Position: Technical Lead -- AI-Powered Fraud & Risk Management Platform
Location: Bengaluru (Bannerghatta Road, JP Nagar)
Work Mode: WFO (On-site only)
Experience: 5-7 years total (with recent hands-on leadership)
Notice Period: 15 days
Employment Type: Full-time
Role Summary
Lead the architecture, design, and delivery of an AI-powered Fraud & Risk Management platform built on open-source technologies. You'll be a hands-on technical lead with deep expertise in Java, Spring Boot, Hibernate, AWS, and microservices, and you'll embed AI/ML models into real-time risk decisioning while ensuring strong security, compliance, and scalability.
Key Responsibilities
Architecture & Design
Define and own a modular, microservices architecture (API-first, domain-driven boundaries) using Java/Spring Boot/Hibernate.
Establish service contracts, data models, and event flows (Kafka/SQS/Kinesis) for high-throughput risk evaluation.
Drive scalability, resilience, and performance (autoscaling, caching, circuit breakers, rate limiting).
Development & Integration
Build and maintain high-performance services and REST/gRPC APIs; enforce clean code, unit/integration tests, and code reviews.
Integrate with payment processors, core banking/fintech systems, KYC/AML providers, device intelligence, and graph/analytics layers.
Implement observability (CloudWatch/Prometheus/Grafana/OpenTelemetry) and SLOs for latency, availability, and error budgets.
Cloud, Deployment & DevOps (AWS)
Design secure AWS topologies (VPC, subnets, NACLs, Security Groups, IAM), containerize with Docker and orchestrate via ECS/EKS.
Own CI/CD (GitLab/Jenkins/GitHub Actions), blue/green and canary releases, infrastructure as code (CloudFormation/Terraform).
Optimize cost and performance (autoscaling policies, right-sizing, storage tiers).
Security & Compliance (Security-by-Design)
Implement authentication/authorization (OAuth2/OIDC, JWT), RBAC/ABAC for permissions and roles.
Enforce encryption & hashing (TLS 1.2+/1.3, AES-256 at rest, PBKDF2/bcrypt/Argon2 for secrets), secure secrets rotation.
Integrate AWS KMS / HSM for key management; implement comprehensive audit logging and tamper-evident trails.
Champion secure SDLC: threat modeling, SAST/DAST/IAST, dependency scanning, SBOMs, vulnerability remediation.
AI/ML Integration
Partner with data scientists to ingrain AI into the solution: define model-serving interfaces (REST/gRPC), latency budgets, and fallbacks.
Contribute to feature engineering, training data specs, and model evaluation (precision/recall, ROC-AUC, drift detection).
Implement MLOps pipelines (versioning, A/B & shadow tests, monitoring, rollback), and ensure explainability where required (e.g., SHAP/LIME).
Translate model outputs into deterministic risk rules and reason codes for regulator-friendly decisions.
Leadership & Collaboration
Mentor a team of backend engineers; set coding standards, review designs, and resolve complex production issues.
* Work closely with Product, QA, DevOps, Data, and Security to deliver roadmap commitments on time with quality.
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