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Vetted Grafana Professionals

Pre-screened and vetted.

VA

Mid-level AI Engineer specializing in agentic LLM workflows and RAG systems

MI, USA3y exp
University of Michigan-Dearborn
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AP

Mid-Level Software Engineer specializing in Java microservices and event-driven systems

Overland Park, KS4y exp
AntraHarrisburg University of Science and Technology

Backend-focused engineer with experience spanning research and healthcare: owned a Python/SQL data pipeline that transformed vulnerability-fix code data from SQLite into model-ready JSON for LLM analysis. Also deployed Dockerized Spring Boot microservices to Kubernetes with Jenkins CI/CD and built Kafka-based real-time event streaming (appointment/report events) with idempotent consumers to avoid duplicate processing.

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TS

Tirth Shah

Screened

Mid-level AI/ML Engineer specializing in anomaly detection, data tooling, and cloud-native systems

Chico, CA4y exp
Chico State EnterprisesCalifornia State University, Chico

Backend/platform engineer who built an LLM-driven QA automation system (“mockmouse”) using a Flask orchestration microservice, Socket.IO real-time updates, Redis caching, and strict Pydantic schemas to turn prompts into reliable action graphs and automated browser tests. Has hands-on Kubernetes delivery experience (Docker/Helm/Jenkins) and has supported large migration programs, validating ETL cutovers with 1M+ synthetic records and rigorous output comparisons; also built event-driven monitoring/anomaly detection streaming into Grafana.

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SB

Samuel Braude

Screened

Junior Computer Science student specializing in robotics, ML, and quantum computing research

San Diego, CA2y exp
San Diego State UniversitySan Diego State University

Hands-on engineer who has taken an LSTM Bitcoin forecasting model from notebook to a production-grade, monitored API (Docker/Gunicorn/Nginx, Prometheus/Grafana, blue-green rollback) delivering 99.9% availability and ~110–120ms p95 latency. Also built an RFID self-checkout prototype spanning Raspberry Pi + firmware + networking, using deep instrumentation to eliminate double-charges/timeouts (<0.1%) and reduce checkout time ~20% through idempotency, debounce logic, and hardware fixes.

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SK

Junior AI/Software Engineer specializing in NLP, RAG, and resume parsing

Remote2y exp
AryticTexas A&M University-Corpus Christi

Backend/AI engineer who built and refactored a production RAG system over IRS Form 990 filings for 60 nonprofits, using a dual-path architecture (deterministic financial ranking + TF-IDF semantic retrieval) to keep latency sub-2s and reduce hallucinations. Demonstrates strong API craftsmanship in FastAPI (contract-first, OpenAPI-driven) plus production-grade security for multi-tenant systems (JWT, RBAC, Supabase-style RLS) and careful migration practices (feature flags, traffic mirroring, incremental rollout).

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II

Mid-level Full-Stack Software Engineer specializing in FinTech and real-time systems

Bellevue, WA7y exp
ATLABYTEKumasi Technical University

Full-stack product engineer with a strong real-time systems focus: built and rolled out a WebSocket-based notifications system (with robust reconnect/resync and event ordering protections) that cut update latency to under 200ms. Also owned a workflow automation platform backend in FastAPI (JWT/RBAC, versioned APIs, standardized errors), designed the PostgreSQL schema for workflows/tasks/executions, and operated deployments on AWS ECS Fargate with blue-green CI/CD and performance stabilization via caching and autoscaling.

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HK

Haneesh Kapa

Screened

Junior AI Full-Stack Engineer specializing in LLM automations and RAG systems

Nashua, NH2y exp
The Distillery Network Inc.University of Massachusetts Lowell

Built and shipped a production LLM-powered customer support assistant using a Python/FastAPI backend with RAG (embeddings + vector search) over internal docs and product/operational data. Instrumented the system with logging/metrics and ran continuous eval loops; post-launch improvements focused on retrieval quality (chunking/ranking) and performance/cost tradeoffs (query classification, caching, validation guardrails).

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SK

Sana Khan

Screened

Mid-Level Software Developer specializing in cloud-native microservices, iOS, and ML deployment

OK, USA3y exp
Oklahoma Christian UniversityOklahoma Christian University

Backend engineer with production ERP experience deploying microservices and improving performance/reliability using a metrics-driven approach (logs, latency, error rates). Has hands-on cloud/hybrid operations across AWS and Azure with Docker/Kubernetes, and has resolved real-world mobile sync issues by tuning timeouts/retries and reducing payload sizes. Builds configurable Python services to deliver customer-specific behavior without destabilizing the core codebase.

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JC

Jeet Choksi

Screened

Mid-level Machine Learning Engineer specializing in real-time AI and data platforms

New York, NY3y exp
MyEdMasterUniversity of Colorado Boulder

ML/NLP engineer who has built production systems end-to-end: a real-time recommendation platform (100k+ profiles) using BERTopic-style clustering and a RAG-based news summarization/recommendation stack with ChromaDB. Strong focus on scaling and reliability (GPU batching, Redis caching, Kafka ingestion, Docker/Kubernetes, Prometheus/Grafana) and on maintaining model quality over time via drift monitoring and retraining triggers.

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PG

Junior AI/ML Engineer specializing in RAG, LLM apps, and cloud-native data platforms

Buffalo, New York1y exp
Alvora AIUniversity at Buffalo

Internship-built full-stack systems spanning HR employee-record portals and internal data-quality dashboards (Flask + SQL + React), emphasizing data integrity and rapid MVP iteration. Also implemented Flask microservices with RabbitMQ for distributed task processing, addressing duplication/ordering issues with idempotency, durable queues, and correlation-ID logging; delivered quantified productivity gains for HR teams.

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AM

Senior Full-Stack Software Engineer specializing in Python microservices and cloud platforms

New York, NY8y exp
TechnumenMetropolitan College of New York
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AN

Mid-Level AI/Full-Stack Engineer specializing in conversational AI and SaaS products

Kochi, India3y exp
Cognifyr.coCochin University of Science and Technology
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BG

Mid-level Software Engineer specializing in cloud microservices and AI search

Fort Worth, TX5y exp
IpserLabCalifornia Lutheran University
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KV

Mid-level Frontend/Full-Stack Software Engineer specializing in React, TypeScript, and AWS

Las Vegas, NV5y exp
UnivSoftware.com, Inc.California State University, Long Beach
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DC

Mid-level Data Scientist specializing in GenAI, MLOps, and computer vision for robotics

Pune, India4y exp
ARAPLTrine University
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AL

Junior Full-Stack Software Engineer specializing in web applications and cloud deployment

San Francisco, CA2y exp
Next TierUC Irvine
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LS

Mid-level Software Engineer specializing in Java/Spring microservices on AWS

Auburn Hills, MI6y exp
DoubleneOakland University
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TA

Mid-Level Full-Stack Software Engineer specializing in cloud-native systems

Orlando, FL4y exp
University of Central FloridaUniversity of Central Florida
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JB

Junior AI/LLM Engineer specializing in voice agents, RAG, and robotics systems

Ellicott City, MD2y exp
GenaivaWest Virginia University
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PL

Mid-Level Software Engineer specializing in full-stack web apps and cloud-native APIs

Overland Park, Kansas3y exp
Wyngate SolutionsUniversity of Texas at Arlington
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BG

Senior SDET specializing in web, API, and mobile test automation

Lee Summit, MO5y exp
University of Central MissouriUniversity of Central Missouri
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RS

Mid-Level Backend Engineer specializing in Java microservices and cloud-native systems

Schaumburg, IL5y exp
Savvy Info SystemsSouthern New Hampshire University
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