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Vetted Prompt Engineering Professionals

Pre-screened and vetted.

Prompt EngineeringPythonDockerSQLAWSCI/CD
VP

Vishesh Patel

Screened

Junior AI/ML Engineer specializing in Python ML, NLP, and model deployment

Piscataway, New Jersey3y exp
Fairfield UniversityFairfield University

“Built and productionized a real-time social-media sentiment analysis system used by a marketing team to monitor brand/campaign performance. Experienced in orchestrating LLM workflows with LangChain (validation → prompting → parsing → post-processing), plus monitoring, retraining, and RAG-style retrieval using embeddings/vector stores to keep outputs reliable over time.”

PythonSQLNoSQLRPandasNumPy+93
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CK

CharanTeja Kurakula

Screened

Entry-Level AI Engineer specializing in NLP and LLM-powered applications

Fairfax, VA1y exp
George Mason UniversityGeorge Mason University

“AI engineer who built an agentic, production-deployed LLM workflow for tobacco violation parsing and automated multi-case creation, using six specialized agents and a human-in-the-loop confidence-threshold routing design. Addressed data privacy constraints by generating synthetic datasets with LLM prompting, and orchestrated reproducible end-to-end pipelines in LangChain with robust testing and evaluation (precision/recall, micro-F1).”

AWSBERTBatch ProcessingCloud ComputingClusteringC+73
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AP

Anupriya Palanisamy

Screened

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.”

AgileAngularAPI TestingApache HadoopAWSCI/CD+69
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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.”

AgileAngularAnomaly DetectionAuthenticationAWSBootstrap+159
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PS

Prasad Sadineni

Screened

Mid-level AI Engineer specializing in LLM fine-tuning, RAG, and agentic systems

Nashville, TN6y exp
HS Solutions.INCEastern Illinois University

“Building and deploying production in-house, domain-specific LLM chatbots for enterprises that cannot use third-party GPT tools due to internal policies. Focused on reducing latency and improving domain awareness using fine-tuning, continual learning, and advanced RAG/agent retrieval strategies, with experience orchestrating multi-agent workflows via LangChain/LlamaIndex and vector DBs (FAISS, Weaviate, Chroma).”

PythonSQLJavaScriptLangChainHugging Face TransformersOpenAI API+120
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SJ

Sangram Jagtap

Screened

Mid-Level Full-Stack Software Engineer specializing in web platforms, cloud, and test automation

San Jose, CA4y exp
San José State UniversitySan José State University

“Full-stack engineer with hands-on ownership of production systems, including a Kafka-based notification/alerting platform (Node.js + React) deployed on AWS with Docker/GitHub Actions, achieving ~95% email delivery reliability. Demonstrates strong operational maturity (observability, CI/CD, zero-downtime migrations) and experience shipping in ambiguous environments (SJSU project) with evolving requirements.”

PythonTypeScriptJavaNode.jsDjangoSpring Boot+102
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JS

Jatin Soni

Screened

Mid-level Software Engineer specializing in Generative AI and scalable backend systems

Corona, CA3y exp
WellomyTechCalifornia State University, Los Angeles

“Backend/AI engineer with production experience in legal tech: built a high-scale licensing/subscription API (FastAPI/Postgres/Stripe) and shipped a RAG-based chatbot for an eDiscovery platform. Designed a robust legal document ingestion workflow that processes thousands of documents into a searchable vector index with clear retry/escalation logic, and has demonstrated measurable Postgres performance wins (200ms to 10ms) using EXPLAIN ANALYZE and composite indexing.”

AgileAngularAutomated testingAWSCI/CDClaude+103
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BM

Balakrishna Mylapilli

Screened

Mid-level AIML Engineer specializing in production ML and MLOps

West Palm Beach, FL5y exp
EasyBee AIFlorida Atlantic University

“ML practitioner who built a production customer risk scoring system to replace slow manual approvals, owning the full pipeline from feature engineering and XGBoost training to deploying a Dockerized FastAPI prediction service. Emphasizes reliability and business-aligned evaluation (recall/ROC-AUC, threshold tuning, drift monitoring) and is comfortable translating model decisions into stakeholder metrics like conversion rate (experience at EasyBee AI).”

A/B TestingAnomaly DetectionAzure Machine LearningClassificationData PreprocessingData Validation+60
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SK

Shreyas Krishnareddy

Screened

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).”

PythonJavaJavaScriptSQLGitC+++115
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VM

Vaibhavi Madhav Deshpande

Screened

Mid-level AI Engineer specializing in LLM agents, RAG, and data pipelines

4y exp
AllyzentUniversity of Central Florida

“Built and productionized LLM-powered workflows that generate contextual insights from structured financial data, including prompt/retrieval design, data standardization, and reliability controls like rate limiting and batching. Also diagnosed and fixed real-time failures in an automated order validation system using logs/metrics, staging reproduction, edge-case handling, retries, and alerting, while supporting sales/customer teams with demos, scripts, and FAQs to drive adoption.”

SQLMySQLPostgreSQLSQLiteMongoDBPython+165
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MA

Mohammed Abdul Aziz

Screened

Junior Full-Stack Software Engineer specializing in AI-powered SaaS

Remote1y exp
AgentNomics.aiCampbellsville University

“Full-stack engineer from an early-stage AI SaaS startup who owned and shipped a production AI-powered PDF document chat and sharing feature end-to-end (React/TS + Node + Postgres on AWS). Demonstrates strong product thinking through layered success metrics and tight feedback loops, plus hands-on reliability/observability work (CloudWatch, structured logging, alarms) and robust ingestion pipeline patterns (idempotency, retries, reconciliation).”

TypeScriptPythonJavaScriptJavaReactNext.js+79
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HS

HarshelSrivatsava Srivatsava

Screened

Intern Full-Stack Engineer specializing in AI-powered SaaS products

Birmingham, AL1y exp
OGymUniversity of Alabama at Birmingham

“Solo builder of OGym, shipping production AI features for gyms that turn member behavior/health data (workouts, attendance, nutrition, payments, device metrics) into prioritized, actionable owner and member insights. Designed and implemented FastAPI backends, PostgreSQL-based RAG workflows, guardrails (RBAC/validation/rate limiting), and real-user evaluation loops, with a strong focus on latency/cost optimization and reliable data pipelines.”

TypeScriptJavaScriptPythonSQLJavaReact+98
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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).”

A/B TestingAlertingAWS LambdaCI/CDDistributed SystemsDocker+128
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BK

Bhargav Kommineni

Screened

Intern Full-Stack/ML Engineer specializing in cloud-native web apps and LLM systems

Pasadena, CA2y exp
BloophEastern Illinois University

“Machine learning lab assistant at Eastern Illinois University who productionized a voice-enabled conversational AI system: redesigned it with RAG, LoRA fine-tuning (including text-to-SQL), and safety guardrails, then deployed a scalable API supporting ~1,000 daily queries. Also partnered with customer-facing teams during a BlueFi internship by building demos/APIs and accelerating releases via Terraform + AWS CI/CD automation.”

AgileAPI DevelopmentAPI GatewayArtificial IntelligenceAutomationAWS+187
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YM

Yasaswini Majety

Screened

Intern AI/ML Engineer specializing in LLMs, RAG, NLP, and MLOps

Overland Park, USA3y exp
Acclaim LogixUniversity of Central Missouri

“Built and deployed a production RAG-based internal document Q&A system using LangChain, vector search, and a dockerized FastAPI LLM service. Focused on reliability by systematically reducing hallucinations and improving retrieval through prompt grounding/abstention strategies, chunking and top-k tuning, and iterative evaluation with logged metrics and manual validation.”

A/B TestingAWSBashCI/CDConfluenceCSS+88
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DP

Dhwani Patel

Screened

Mid-level Full-Stack Python Developer specializing in AI/ML and backend APIs

BC, Canada15y exp
Artefactual SystemsGujarat Technological University

“Python/Django backend engineer with open-source experience upgrading Archivematica to Django 4.2 LTS, including resolving a tricky breaking change in datetime parsing by implementing a preservation-safe legacy timestamp conversion layer. Also built a cost-efficient, reproducible Small Language Model (Microsoft Phi-3) fine-tuning pipeline that turns CSV product data into a domain-specific searchable Q&A chatbot, with emphasis on memory optimization and overfitting prevention.”

PythonDjangoFlaskREST APIsFastAPIJavaScript+100
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SP

Sai Prakash Sasubilli

Screened

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

NH, USA4y exp
Peak Play AI SportsRivier University

“Full-stack system analyst/programmer at PeakPlay Sports (startup) who built an AI "coach" product end-to-end in ~2 months, using a LangGraph-orchestrated multi-agent architecture with a FastAPI backend. Shipped production RAG grounded in athlete history (OpenAI embeddings + vector store) with guardrails and a structured eval loop (golden set + LLM-judge + human review) to improve engagement and reduce hallucinations.”

TypeScriptPythonSQLReactReduxNext.js+79
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TK

Trilok Kambham

Screened

Junior Full-Stack Developer specializing in React, Node.js, and AI/LLM integrations

College Park, Maryland2y exp
LeafNBeyondUniversity of Central Oklahoma

“Full-stack developer who owned and shipped an end-to-end web application for LeafNBeyond (React/Node/Postgres), deployed to production at leafnbeyond.com, with reported 35% sales growth and strong UX feedback. Also built Azure-based ETL pipelines using lakehouse/medallion architecture with validation and retry logic, and has AWS fundamentals from a master’s coursework (EC2, RDS, IAM, load balancing).”

PythonJavaJavaScriptPHPSQLTypeScript+84
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YB

Yassin Benelhajlahsen

Screened

Intern Full-Stack Software Engineer specializing in Healthcare IT

Remote1y exp
SoaperBrooklyn College (CUNY)

“Student full-stack builder shipping real products: a mobile app (Sirat) where they delivered end-to-end theme settings with testing and fast post-launch fixes, and a sports web app (Scorva) that generates AI game summaries from game stats with Postgres-backed caching to control LLM costs. Available for full-time work starting June 2026 and targeting $95k–$110k.”

AgileAWSCI/CDData Structures & AlgorithmsDatabase IndexingEncryption+63
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AK

Ayushant Khandekar

Screened

Junior Full-Stack Developer specializing in GenAI-powered web and mobile apps

Remote2y exp
Xaction.inSavitribai Phule Pune University

“Web3 creator-led growth and community builder who frames crypto as infrastructure and designs content to drive measurable on-chain behavior. Uses X-native distribution (threads, replies, quote-tweets) paired with interactive CTAs and on-chain dashboards to convert attention into trust and product usage, with a structured 90-day plan for launching and scaling protocol communities.”

PythonJavaScriptTypeScriptJavaC++Kotlin+52
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PS

Pavan Sai Reddy Pendry

Screened

Junior AI/ML Engineer specializing in GenAI, RAG, and full-stack ML systems

Lawrence, Kansas3y exp
University of KansasUniversity of Kansas

“Built a university campus assistant chatbot (BabyJ/WWJ) using RAG and agentic routing with a FastAPI + React stack and JWT auth, focusing heavily on production concerns like latency and reliability. Uses techniques like speculative prefetching, smart intent routing, and rigorous eval/testing (golden sets, regression, edge cases) while collaborating closely with campus admin/advising teams to iterate based on real user feedback.”

PythonC++CJavaHTMLCSS+107
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ES

Exequiel Silvestre

Screened

Junior Software & AI Engineer specializing in cloud-based AI applications

Argentina2y exp
Pi ConsultingNational Technological University

“AI/LLM engineer with production experience delivering large-scale RAG and voice-agent solutions for banking clients. Implemented a SharePoint-based, non-technical content update workflow with incremental hourly ingestion into a vector DB, and actively contributes to Microsoft’s open-source GPT-RAG accelerator while using modern orchestration (Semantic Kernel, LangGraph) and LLM observability/evaluation tooling.”

PythonSQLJavaScriptReactAWSFastAPI+40
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TY

Tedi Yon

Screened

Junior Visual Designer specializing in AI video ads and digital marketing design

Remote, US2y exp
IconChiang Mai University

“Graphic Designer focused on modern, high-polish marketing creative across static and video. Builds brand-specific Figma design systems (exporting live sites via HTML-to-design plugin, then structuring foundations/components with heavy auto-layout and variants) to support fast bulk edits and high-volume output. Produces short-form AI-driven marketing videos in CapCut with hook-first pacing and modular templates, and iterates quickly with growth teams via async Slack feedback cycles.”

Design SystemsPrompt EngineeringJSONVideo ProductionFigmaSEO+64
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KA

Karthikeya Arra

Screened

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

Kansas City, MO4y exp
PROZECH SOLUTIONSUniversity of Missouri-Kansas City

“Backend/ML engineering candidate focused on fintech automation who architected a zero-to-one agentic/LLM-enabled system to reconcile messy financial documents and bank transactions, reporting ~40% operational efficiency gains. Experienced migrating monoliths to event-driven microservices with incremental rollout via reverse proxy, and implementing production-grade security (OAuth2/JWT, RBAC, Supabase RLS) plus resilience patterns (timeouts/retries under concurrency).”

AgileAPI DevelopmentCI/CDCloud ComputingComplianceData Pipelines+135
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