Vetted Structured Logging Professionals

Pre-screened and vetted.

MA

Mid-level Full-Stack Software Engineer specializing in FinTech compliance systems

Austin, TX4y exp
eBayUniversity of Missouri
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YS

Senior Software Engineer specializing in data platforms, automation, and ML/LLM pipelines

Sunnyvale, CA12y exp
Johnson & JohnsonBeijing Normal University
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LP

Senior Unity/VR Developer specializing in real-time interactive and multiplayer systems

San Francisco, CA12y exp
VisaOsaka University
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RR

Mid-level Full-Stack Engineer specializing in Java/Spring and React on cloud microservices

Los angeles, CA6y exp
TikTokUniversity of Texas at Arlington
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BJ

Mid-level Full-Stack Engineer specializing in AI-powered cloud applications

San Francisco, CA6y exp
PerplexityStevens Institute of Technology
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VJ

Mid-level AI/ML Software Engineer specializing in backend and MLOps on AWS

6y exp
UberOld Dominion University
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GK

Intern Software Engineer specializing in cloud-native distributed backend systems

Portland, OR3y exp
NikeOregon State University
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MH

Mid-level Software Engineer specializing in event-driven backend and on-device ML for robotics

San Francisco Bay Area, CA5y exp
AmazonIllinois Institute of Technology
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VN

Mid-level AI Engineer specializing in ML, MLOps, and enterprise NLP

5y exp
Goldman SachsUniversity of Connecticut
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YO

Senior AI Platform Engineer specializing in agentic AI and RAG systems

Alpharetta, GA7y exp
Morgan StanleyKakatiya Institute of Technology and Science
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LX

Longyang Xu

Screened ReferencesStrong rec.

Junior Full-Stack Software Engineer specializing in cloud microservices and ML-driven products

Quincy, MA1y exp
GraniteCarnegie Mellon University

Backend engineer with hands-on ownership of Python/Flask microservices and recommendation systems across edtech and telecom. Deployed and operated real-time personalization/recommendation platforms on AWS EKS with Jenkins-based CI/CD, GitOps-style declarative configs, and strong observability practices. Has migration experience moving legacy mixed environments to modern containerized Kubernetes and built Kafka pipelines feeding ML services while managing schema evolution.

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MM

Senior Software Engineer specializing in AI/ML backend and cloud infrastructure

Bentonville, AR11y exp
WalmartUniversity of Houston

Backend/data platform engineer with production experience at Walmart and Molina Healthcare, building Python microservices on AWS (EKS + Lambda) for real-time inventory and recommendation systems. Strong in reliability/observability and incident leadership, plus modernizing legacy healthcare workflows and building resilient AWS Glue/PySpark pipelines with schema evolution and data quality controls.

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Ajith P - Mid-level Backend Software Engineer specializing in AI workflow automation for finance and healthcare

Ajith P

Screened

Mid-level Backend Software Engineer specializing in AI workflow automation for finance and healthcare

4y exp
Goldman SachsUniversity of Central Missouri

Backend/AI engineer with healthcare domain experience who built a patient journey analytics API (FastAPI/PostgreSQL/Snowflake/Redis) and debugged peak-hour latency down from ~900ms to ~50ms via indexing and query optimization. Shipped an LLM-powered clinical summary/recommendation assistant end-to-end and designed a multi-step risk evaluation agent workflow with safety guardrails against hallucinations and unsafe outputs.

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MN

mahesh narne

Screened

Senior Full-Stack Software Engineer specializing in cloud-native microservices and web apps

San Jose, CA3y exp
PayPalUniversity of Central Missouri

Backend-focused engineer building customer support/order-tracking platforms with Java 17/Spring Boot microservices and a React/TypeScript frontend. Deep experience running event-driven systems on Kubernetes (Kafka, Redis, MySQL) with strong observability (Prometheus/Grafana/Splunk), SLOs, and safe deployment practices (feature flags, canaries). Also built an internal monitoring/debugging dashboard that consolidated metrics and logs for on-call engineers and was adopted by other teams to speed incident response.

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RS

Mid-level Software Engineer specializing in full-stack agentic AI

Tampa, FL3y exp
SamsungUniversity of South Florida

Built a production-grade agentic document intake system that converts PDFs into structured records with strict schema validation, confidence-based retries, and a human review UI. Demonstrates strong practical judgment around making LLM systems reliable in enterprise workflows, including custom orchestration, observability, and continuous evals rather than relying on off-the-shelf abstractions.

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AD

Aarati Dulal

Screened

Senior Full-Stack Java Engineer specializing in cloud-native microservices

Dallas, TX6y exp
Goldman SachsAvila University

Backend/platform engineer who owned high-volume Java/Spring Boot microservices on AWS (Kafka + RDS/DynamoDB) and has hands-on experience debugging complex production latency incidents across DB, JVM/GC, and async consumers. Also shipped applied AI features for ops, including an LLM-powered log analysis assistant and an incident-response agent with strong safety guardrails (schema-validated tool use, retries/backoff, and human-in-the-loop escalation).

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AP

Akash Patil

Screened

Mid-Level Software Engineer specializing in backend systems and LLM/RAG applications

5y exp
IntuitNorthern Illinois University

Backend/AI engineer at Intuit who built a production AI-powered case assistant for support agents (FastAPI on AWS EKS) combining Postgres case data, OpenSearch retrieval with embedding reranking, and internal LLMs. Improved peak-season reliability by diagnosing P95/P99 timeout spikes and cutting P95 latency from ~800ms to <400ms via composite indexing, keyset pagination, connection pool tuning, and caching, while adding grounded-generation guardrails (evidence packs, confidence thresholds, fallbacks, human-in-the-loop).

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NC

Senior Full-Stack Engineer specializing in AI and cloud-native applications

Lakeland, FL8y exp
Revscale AIUC Irvine

Built and shipped a production LLM-powered internal developer tool that accelerated code reviews by about 30% while maintaining reliability through modular orchestration, validation, and monitoring. Demonstrates strong practical depth in agent architecture, backend workflow orchestration, and observability for non-deterministic AI systems, with concrete examples of reducing agent errors by 60%.

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Tejal Meda - Mid-level Backend/Platform Engineer specializing in distributed systems and data platforms in Bangalore, India

Mid-level Backend/Platform Engineer specializing in distributed systems and data platforms

Bangalore, India3y exp
Schneider ElectricUniversity of Texas at Austin
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Harsha Konjeti - Mid-Level Full-Stack Software Engineer specializing in FinTech and EdTech in Seattle, WA

Mid-Level Full-Stack Software Engineer specializing in FinTech and EdTech

Seattle, WA4y exp
JPMorgan ChaseIndiana University Bloomington
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