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Vetted Schema Validation Professionals

Pre-screened and vetted.

DM

Mid-level Data Scientist specializing in GenAI, RAG, and forecasting

New Jersey, USA4y exp
University at BuffaloUniversity at Buffalo

ML/NLP engineer focused on large-scale data linking for e-commerce-style catalogs and customer records, combining transformer embeddings (BERT/Sentence-BERT), NER, and FAISS-based vector search. Has delivered measurable lifts (e.g., +30% matching accuracy, Precision@10 62%→84%) and built production-grade, scalable pipelines in Airflow/PySpark with strong data quality and schema-drift handling.

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AP

Junior AI/ML Engineer specializing in LLM agents and RAG systems

Austin, TX2y exp
Attri AINortheastern University

Built and deployed a production, multi-tenant modular agentic AI platform at Easybee AI, using LangChain/LangGraph with Redis-backed durable state to make agents reusable, traceable, and auditable. Emphasizes reliability via strict tool schemas, deterministic controllers, tenant-level policy enforcement, and regression testing derived from real production failures; also delivered AI automation for legal/finance workflows (attorney draw and expense automation) with explainable, deterministic payouts.

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MK

Mid-Level Full-Stack Software Engineer specializing in microservices and Generative AI

Atlanta, Georgia3y exp
Georgia State UniversityGeorgia State University
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MP

Mid-Level Full-Stack Developer specializing in automation and AI pipelines

Gainesville, FL3y exp
Zoscale ConsultingUniversity of Florida
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RM

Mid-Level Full-Stack Developer specializing in MERN and AR/VR applications

Indiana, USA4y exp
Purdue University NorthwestPurdue University Northwest
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SP

Mid-level AI/ML Engineer specializing in cloud-native data pipelines and RAG systems

Texas, USA5y exp
TCSUniversity of South Florida
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AP

Mid-level AI/ML Data Engineer specializing in secure ML pipelines and AI governance

Plano, Texas4y exp
InfosoftUniversity of Texas at Dallas
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HK

Himanshu Kiran Garud

Screened ReferencesStrong rec.

Mid-Level Software Engineer specializing in full-stack web and data engineering

United States4y exp
EPRIUniversity of North Carolina at Charlotte

Backend/ML engineer who has built both enterprise data pipelines and real-time AI products: modular Python (Flask/FastAPI) services integrating automation scripts and low-latency ML inference (MediaPipe, PyTorch) plus OpenAI-powered feedback. Demonstrated measurable performance wins (~30% faster HR workflows; ~40% faster AWS pipelines across 100+ Oscar Health feeds) and strong multi-tenant/data-isolation patterns (schema-based isolation, RBAC, microservices).

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TA

Tanweer Ashif

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer and Data Scientist specializing in LLMs and MLOps

Buffalo, NY5y exp
University at BuffaloUniversity at Buffalo

Data science/AI intern at University at Buffalo Business Services who built and deployed production systems spanning classic ML and LLM assistants. Delivered real-time competitor intelligence for a Cornell-partnered, $1B beverage launch by scraping/cleaning 5,000+ SKUs and deploying models via API, then built a domain-aware LLM assistant to modernize Excel-based workflows with strong grounding, privacy controls, and sub-5s latency.

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VV

varsha viswanathan

Screened ReferencesStrong rec.

Entry-Level Software Engineer specializing in backend systems and FinTech

Fremont, CA1y exp
UnicgateUniversity of Texas at Dallas

Software engineering intern experience at Zoho Corp and Zeus Desk building and deploying customer-facing systems. Delivered a real-time booking platform backend that stayed stable for 1,000+ users by optimizing MySQL queries/indexing and shipping hotfixes during production latency incidents. Also integrated financial operations APIs across 50+ small-bank partners by creating a normalization/validation layer to handle inconsistent partner data and prevent integration breakages.

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YS

Yash Sanjay Zaveri

Screened ReferencesStrong rec.

Junior Software Engineer specializing in AI agents and backend systems

Boston, MA2y exp
Northeastern UniversityNortheastern University

Built and shipped an LLM-powered AI copilot for certified dietitians at Healthful Telehealth that generates personalized meal plans from messy semi-structured patient data. Architected an end-to-end multi-step agent with RAG, strict JSON-schema outputs, validation/guardrails, retries/fallbacks, and human-in-the-loop routing—driving a reported ~30% system performance improvement and reducing dietitian manual effort.

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AN

Abhishek Namdev Sawant

Screened ReferencesModerate rec.

Mid-Level Backend Software Engineer specializing in Java microservices and cloud platforms

Seattle, WA5y exp
Ecological Servants ProjectSeattle University

Backend/platform engineer with payments and insurance domain experience (Cognizant), owning high-volume production systems end-to-end. Shipped a Spring Boot payment tokenization service with strong observability and phased migration that cut transaction latency ~30% and improved payment efficiency ~25%. Also productionized an ML-driven financial health/risk analytics pipeline with near real-time dashboards across 70+ schools, emphasizing interpretability, data quality, and drift monitoring.

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LK

Mid-level Embedded Software Engineer specializing in RTOS and microcontroller firmware

Boston, MA4y exp
PTCUniversity of Central Missouri

Backend/embedded-focused engineer with hands-on experience designing real-time, memory/power-constrained firmware architectures and also building Python/FastAPI services. Demonstrates strong production rigor across migrations (strangler pattern, shadow reads, feature flags), security (OIDC/JWT, RBAC/ABAC, Postgres RLS), and robustness for async workflows (idempotency, event ordering, state machines).

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SA

Mid-level Software/Data Engineer specializing in LLM apps, RAG pipelines, and cloud microservices

Birmingham, Alabama3y exp
Broadband InsightsUniversity of Alabama at Birmingham

Backend/data engineer who built an enterprise LLM assistant (AI Genie) at Broadband Insights using a LangChain + GPT-4 + Pinecone RAG pipeline to automate broadband analytics reporting. Developed Python/Dagster ETL processing 10M+ records/day and improved data freshness by 60%, with production-grade scalability patterns (async workers, containerized microservices, Kubernetes) and strong multi-tenant isolation practices.

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EA

Senior Full-Stack Developer specializing in web, cloud, and real-time data platforms

USA9y exp
EmersonUniversity of Central Missouri

Full-stack engineer who built an early-stage social platform for scriptwriters (Scriptscape) from scratch, owning everything from React Native/React UX to Node/Postgres APIs and AWS deployment. Demonstrates strong production-minded engineering with CI/CD, observability, and scalability patterns (cursor pagination, indexing, background jobs), plus experience hardening flaky third-party integrations with idempotency and backfills.

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SS

Junior Software Engineer specializing in backend systems and AI data pipelines

Remote, USA1y exp
Zorro AINortheastern University

Backend engineer with fintech/AI startup experience who built an Azure serverless, event-driven pipeline for large-scale crypto sentiment analysis and semantic search (OCR/NLP to vector search) and integrated LLM + blockchain data for predictive insights. Demonstrated measurable impact (25% lower retrieval latency, 10% fewer data errors, 15% higher engagement) and has led safe microservices migrations with strong security and reliability practices.

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SG

Saharsha Goud

Screened

Senior Full-Stack Java Developer specializing in microservices and cloud platforms

Denver, CO7y exp
DaVitaUniversity of Central Missouri

Full-stack engineer focused on data-heavy platforms, building Spring Boot microservices and Angular/React dashboards end-to-end. Has hands-on experience improving large-scale API and UI performance (including cutting 8–10s response times) and ensuring cross-service consistency using Kafka, idempotent consumers, and strong validation/transaction patterns on AWS with CI/CD and observability (Prometheus/ELK).

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AS

Althaf Shaik

Screened

Senior Software Engineer specializing in cloud-scale distributed systems and data platforms

Hyderabad, India4y exp
DHI ADT SolutionsNJIT

LLM/RAG-focused engineer who repeatedly takes agentic workflows from impressive demos to dependable production using rigorous evals, SLOs, and deep observability. Has led high-impact incident mitigation (22-minute MTTR during a major sale) and developer enablement workshops, and partnered with sales to close a $410k ARR enterprise deal with a tailored RAG pilot (FastAPI/pgvector/Okta/InfoSec-ready).

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SV

Satya VM

Screened

Mid-level GenAI/Data Engineer specializing in LLMs, RAG systems, and fraud detection

Ruston, LA7y exp
Origin BankOsmania University

ML/NLP engineer with banking domain experience who built a GenAI-powered fraud detection and risk intelligence system at Origin Bank, combining RAG (LangChain + FAISS), fine-tuned BERT NER, and GPT-4/Sentence-BERT embeddings. Delivered measurable impact (25% higher fraud detection accuracy, 40% less manual review) and emphasizes production-grade pipelines on AWS SageMaker/Airflow with strong data validation and scalable PySpark processing.

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SA

Mid-level Software Engineer specializing in cloud-native microservices and AI/ML

4y exp
HumanaUniversity of Central Missouri

Full-stack engineer with healthcare/AI platform experience (Humana), owning an end-to-end high-risk patient prediction feature from React dashboards through FastAPI/TensorFlow real-time inference to AWS EKS operations. Emphasizes production reliability and contract-driven APIs (OpenAPI + generated TS types), plus strong data integration patterns (Kafka, idempotency, DLQs, backfills) in regulated, high-traffic environments.

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KD

Kunal Doshi

Screened

Senior Full-Stack Software Engineer specializing in cloud-native platforms and AI/NLP

Los Angeles, CA4y exp
AIRKITCHENZCalifornia State University, Fullerton

Full-stack engineer at an early-stage startup (AirKitchenz) who owned the hourly booking/availability and first paid booking flow end-to-end—React/TypeScript frontend, Node backend, Postgres modeling, and Stripe payments/webhooks. Experienced operating production on AWS (EC2/Elastic Beanstalk, Docker, RDS, CloudWatch) and building reliable, idempotent integrations while iterating quickly in a pre-PMF environment through direct host/renter feedback.

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SC

Mid-level AI Engineer specializing in causal inference and LLM research

New York, USA8y exp
Binghamton UniversityBinghamton University

LLM engineer who has deployed a production system combining LLMs with causal inference (DoWhy) to enable counterfactual “what-if” analysis for experimental research, including a robust variable-mapping/validation layer to reduce hallucinations. Also partnered with non-technical operations leadership at Irriion Technologies to deliver an AI-assisted onboarding workflow that cut onboarding time by 50% and reduced manual errors by ~40%.

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HK

Mid-level AI/ML Engineer specializing in Generative AI and LLM-powered NLP

Boston, MA3y exp
G-PLindsey Wilson College

LLM/AI engineer who built a production automated document-understanding pipeline on Azure using a grounded RAG layer, designed to reduce manual review time for unstructured financial documents. Demonstrates strong real-world scaling and reliability practices (Service Bus queueing, Kubernetes autoscaling, observability, retries/circuit breakers) plus rigorous evaluation (shadow testing, replaying traffic, multilingual edge-case suites) and stakeholder-friendly, evidence-based explainability.

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DK

Mid-level Software Engineer specializing in AI RAG systems and full-stack cloud applications

Alpharetta, GA3y exp
Compusoft Integrated SolutionsArizona State University

AI/LLM engineer who shipped a production RAG-based knowledge assistant at SparkPlug serving 10,000+ daily users, streaming GPT-4 answers with inline citations over WebSockets. Demonstrated measurable impact (support resolution time cut 18→12 minutes; retrieval precision +~20%) and strong production rigor across ingestion, monitoring/alerting, evaluation, and messy ERP-style data integration with validation, RBAC, and idempotent operations.

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