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Vetted Distributed Tracing Professionals

Pre-screened and vetted.

Distributed TracingDockerPythonCI/CDKubernetesPostgreSQL
MS

Mayuresh Satao

Mid-level Distributed Systems Engineer specializing in microservices and cloud infrastructure

4y exp
Xellar BiosystemsNortheastern University
PythonDjangoFlaskFastAPIGoJavaScript+60
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ZX

Ziyang Xiao

Intern Software Engineer specializing in semantic search and cloud-native backend systems

Shenzhen, China2y exp
China Resources PowerNortheastern University
AgileAPI GatewayAsynchronous ProcessingAWSCachingCelery+67
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PN

Prudhvi Nelavelli

Mid-level Software Engineer specializing in backend microservices and distributed systems

Columbus, OH5y exp
FiservSoutheast Missouri State University
AgileAngularAPI GatewayAudit LoggingAuthenticationAuthorization+107
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AY

Aditya Yadav

Senior Backend/Automation Engineer specializing in cloud-native systems and test automation

Sunnyvale, CA3y exp
TipsData AIStevens Institute of Technology
PythonJavaC#.NETJavaScriptTypeScript+57
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YK

Yakup Koc

Senior .NET Backend Engineer specializing in microservices on Azure

St. Louis, MO8y exp
EquifaxFirat University
C#JavaPythonJavaScriptREST APIsMicroservices Architecture+71
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SR

Santhosh Reddy Marepalli

Mid-level Full-Stack Developer specializing in Spring Boot microservices and React

Birmingham, AL3y exp
Blue Cross Blue ShieldSt. Francis College
JavaJavaScriptTypeScriptPythonReactRedux+88
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SP

SuryaPrakash Punukollu

Mid-level GenAI Engineer specializing in agentic workflows, RAG, and LLM orchestration

Las Vegas, NV3y exp
Gainwell TechnologiesUniversity of Cincinnati
Amazon BedrockAmazon EC2Amazon RedshiftAmazon SageMakerAngularAnomaly detection+121
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RB

Ria Banerjee

Mid-level Backend Software Engineer specializing in AI-powered microservices and cloud infrastructure

Albuquerque, USA4y exp
EAGL Technology Inc.University of North Carolina at Charlotte
PythonJavaSQLGoC++TypeScript+75
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AS

Adithya Sharma

Screened ReferencesModerate rec.

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

Remote, USA5y exp
EncoraUniversity of Michigan-Dearborn

“Built and deployed a production LLM-powered text-to-SQL/document intelligence chatbot on AWS that lets non-technical business users query complex enterprise databases in plain English. Demonstrates deep practical expertise in schema-aware prompting, embeddings-based schema retrieval, SQL safety/validation guardrails, and rigorous offline/online evaluation with human-in-the-loop approvals for risky queries.”

PythonSQLRJavaC++Bash+149
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VJ

Venkata Jithesh B

Screened

Mid-level Software Engineer specializing in distributed real-time systems

New York, USA4y exp
SutherlandUniversity of Central Missouri

“Backend engineer focused on real-time, event-driven distributed systems (Node.js/TypeScript) with strict latency and reliability requirements. Deep hands-on experience debugging concurrency issues and designing resilient workflows (idempotency, circuit breakers, compensating actions) with strong observability; familiar with ROS/ROS2 concepts and confident ramping into robotics integrations.”

C#.NETTypeScriptReactNode.jsSQL+90
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ES

Eranda Sooriyarachchi

Screened

Mid-level AI Engineer specializing in RAG, conversational AI, and agentic systems

Remote6y exp
MedLibIowa State University

“Built and deployed a production RAG-based clinical decision support assistant at MedLib, focused on fast, trustworthy answers from large medical documents. Demonstrates deep practical experience improving retrieval accuracy (semantic chunking + metadata-aware search), controlling hallucinations with grounded generation and thresholds, and adding clinician-requested citations using chunk metadata, with evaluation driven by healthcare professional review.”

API GatewayAWSAWS LambdaCI/CDComputer VisionC+94
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SR

Samee Rauf

Screened

Junior AI/Full-Stack Software Engineer specializing in ad automation and LLM systems

Dallas, Texas3y exp
PMG WorldwideCal State Fullerton

“Full-stack engineer with deep ad-tech/marketing automation experience, building production tools that reduce programmatic ad waste and improve search ads performance. Shipped and operated AWS-deployed, Dockerized systems with Postgres/Redis and strong observability (Datadog/OpenTelemetry), and delivered measurable impact (25k campaigns processed, 50k sites negated, 3–4 hours/week saved). Built scalable abstractions for multi-platform ad integrations, enabling rapid onboarding of additional clients.”

PythonGoJavaC++JavaScriptTypeScript+77
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SP

Sanskar Pandey

Screened

Entry-Level Full-Stack Software Engineer specializing in web apps and cloud

Indore, India1y exp
Snap Computer Systems Pvt. LtdCleveland State University

“Full-stack engineer with production experience building a real-time order tracking system using React + Firebase/Firestore, emphasizing audit-friendly data modeling, state-machine-based status transitions, and strong post-launch ownership (performance, security rules, reliability). Demonstrated measurable frontend performance gains by isolating real-time updates to dynamic components and applying memoization, plus backend reliability patterns (idempotency, retries) and SQL query/index optimization validated with EXPLAIN ANALYZE.”

CC++JavaPythonJavaScriptSQL+149
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SK

Sriram Krishna

Screened

Mid-Level Software Engineer specializing in AI/ML and cloud-native platforms

Redmond, WA5y exp
Quadrant TechnologiesSeattle University

“Backend/AI engineer who has built production LLM orchestration and agentic workflow systems in Python/FastAPI on Kubernetes across AWS/Azure. Demonstrated strong reliability engineering by debugging a real-world memory retention issue that caused latency spikes/timeouts, and strong data/performance chops with a PostgreSQL optimization that cut query latency from ~1.2s to ~15ms. Targets roles building scalable, guardrailed AI-driven workflow automation with robust observability and human-in-the-loop controls.”

PythonC#JavaJavaScriptTypeScriptSQL+145
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DA

Doondi Ashlesh Tammineedi

Screened

Junior Full-Stack Software Engineer specializing in cloud-native web apps and AI tooling

California, US3y exp
EduQuencherMissouri University of Science and Technology

“Software engineer with experience across edtech, live gaming, and an AI document intelligence platform, delivering end-to-end customer-facing features and production backends. Built secure, automated live-session scheduling integrating Zoom and TalentLMS (JWT/RBAC, idempotency, transactions) cutting setup time from ~3 minutes to under 1 minute, and optimized real-time gaming dashboards/APIs with query tuning, caching, and CDN improvements (~60% latency reduction under peak load) on AWS.”

PythonJavaJavaScriptTypeScriptCC+++101
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SS

Sam Sharif

Screened

Senior Full-Stack Engineer specializing in React and Python

Drexel Hill, Pennsylvania9y exp
Tech PrysmTemple University

“Backend/data engineer focused on production AWS systems: builds multi-tenant FastAPI services on ECS behind API Gateway/ALB with serverless orchestration (Lambda, SQS, Step Functions) and strong reliability practices (JWT/JWKS auth, idempotency, backoff retries, structured logging). Also delivers AWS Glue/PySpark ETL pipelines with schema/data-quality controls and has modernized legacy analytics logic into Python with parity validation; improved a key dashboard SQL query from ~12–25s to ~2–3s.”

ReactJavaScriptTypeScriptVue.jsBootstrapTailwind CSS+80
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SK

Santhos Kamal Arumugam Balamurugan

Screened

Junior Software Developer specializing in LLMs, RAG pipelines, and web applications

Bridgewater, NJ3y exp
OncorreOregon State University

“Backend engineer (Encore) who led the evaluation and redesign of a high-volume, low-latency real-time retrieval/ranking and inference platform on AWS, shifting from tightly coupled services to a modular architecture for better fault isolation and independent scaling. Strong focus on production reliability, observability, and security (JWT/RBAC, multi-tenant scoping, Postgres/Supabase RLS), with disciplined migration playbooks (feature flags, shadow traffic, dual writes/reconciliation).”

JavaPythonJavaScriptTypeScriptReact NativeReact+149
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TP

Tulasi padamata

Screened

Junior Machine Learning Engineer specializing in Document AI and LLM-powered workflows

India1y exp
NOVACIS DIGITALRochester Institute of Technology

“Built and owned a customer-facing Document Intelligence Service for legal contract analytics at Noasis Digital, delivering extraction/summarization with careful accuracy controls (confidence thresholds, versioned deployments, production logging). Also developed a React/TypeScript document review app and internal QA dashboard, and has hands-on microservices experience with async messaging (RabbitMQ), timeout tuning, and centralized structured logging for reliability at scale.”

Amazon BedrockAmazon CloudWatchAmazon DynamoDBAmazon EKSAmazon KinesisAmazon Redshift+87
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RS

Riya Stanly

Screened

Intern Data Scientist specializing in machine learning, NLP, and LLM fine-tuning

2y exp
SmollanGeorge Mason University

“Built a production-style AI meeting summarization and action-item extraction system (Azure Speech-to-Text + transformer summarization/NER) exposed via a Flask REST API, with explicit guardrails to prevent hallucinated tasks. Strong focus on reliability: modular agent/workflow design, precision-first evaluation with human-validated golden notes, and practical orchestration patterns (tool-augmented agents; ready to scale into Airflow/LangGraph/Prefect).”

Apache AirflowArtificial IntelligenceAutomationAWSBootstrapBusiness Intelligence+126
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RS

Rizwana Shaik

Screened

Mid-level Full-Stack Software Engineer specializing in cloud-native apps and AI copilots

Dallas, TX4y exp
Integrated Digital SolutionsUniversity of North Texas

“Internship project building and deploying a LLaMA-based, RAG-enabled copilot inside a Professional Services Automation platform, enabling natural-language navigation, text-to-SQL reporting, and project/resource/budget insights across multiple modules. Addressed real production issues like context drift and vague queries with hybrid search, metadata enrichment, and an intent classification/rewriting layer, orchestrated via Apache Airflow—ultimately cutting PMO reporting time by 40%.”

PythonDjangoFlaskFastAPIJavaScriptTypeScript+165
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