Vetted SQL Professionals

Pre-screened and vetted.

IV

Indraneel V

Screened

Mid-level Cloud & DevOps Engineer specializing in AWS/Azure, Kubernetes, Terraform, and CI/CD

Griffin, GA8y exp
ZSAuburn University at Montgomery

IBM Power/AIX infrastructure engineer with hands-on production experience across Power8/Power9 frames, VIOS and HMC, including resolving a production LPAR outage caused by vFC mapping issues. Has operated PowerHA clusters for critical finance workloads, running quarterly failover tests and handling an unplanned failover triggered by a network adapter failure, then improving resilience with redundancy and monitoring automation.

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AP

Senior QA Automation Engineer specializing in test automation and CI/CD quality gates

Toronto, ON7y exp
Auto TraderSardar Vallabhbhai Institute of Technology

QA automation engineer focused on end-to-end quality for a CMS lien registration workflow, owning a Playwright-based regression suite covering high-risk paths (creation, amendments, cancellation, batch file validation). Demonstrated impact by catching a UI change that bypassed required-field validation pre-release, stabilizing flaky CI tests using network-response signals, and driving clearer acceptance criteria and observability improvements (request IDs in logs) through cross-functional collaboration.

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LO

Landry Ottou

Screened

Mid-level DevOps/Cloud Engineer specializing in multi-cloud CI/CD and Kubernetes

Miami, FL3y exp
Royal CaribbeanGeorgia State University

IBM Power/AIX infrastructure engineer who has owned a sizable production estate (50 Power servers / ~200 LPARs) spanning VIOS/HMC, SAN/NFS, and PowerHA clusters. Demonstrates strong incident leadership (LPAR outage + split-brain recovery) and a process-improvement mindset with measurable reductions in recurrence/MTTR, while also bringing modern DevOps/IaC experience (Jenkins, ArgoCD, Terraform, security scanning, canary/blue-green).

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HC

Mid-Level Software Engineer specializing in Cloud Infrastructure and DevSecOps

Cockeysville, MD6y exp
TextronUniversity of Maryland, Baltimore County

Production infrastructure engineer from Textron Systems who owned IBM Power/AIX 7.2 environments supporting manufacturing-critical automated RF test workloads. Deep hands-on experience with VIOS/HMC, DLPAR performance issues, SAN/vFC failures and failover recovery, plus modern DevOps practices (Azure DevOps CI/CD, Key Vault) and Terraform-based AWS infrastructure with remote state/locking and drift controls.

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MC

Mid-level Full-Stack Java Developer specializing in microservices and cloud (AWS/Azure)

Texas, USA4y exp
PNCWichita State University

Backend/full-stack Java engineer at PNC Bank specializing in real-time fraud detection systems. Built event-driven Spring Boot + Kafka microservices with PostgreSQL/Redis performance tuning, and shipped a production LLM-powered RAG feature for fraud analysts with strong guardrails (grounded internal data, structured prompts with references, human-in-the-loop) plus an evaluation loop using labeled historical fraud cases.

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PM

Prachi More

Screened

Senior QA/Test Engineer specializing in manual, API, and web application testing

Ashburn, VA11y exp
AbbottUniversity of Massachusetts Dartmouth

Software QA professional (non-gaming) with strong end-to-end release and production support experience in Agile environments. Led a large QA effort migrating customers from a legacy application to a new platform, owning test scope, deployment coordination, release sign-off, and issue troubleshooting. Known for evidence-rich bug reports (API-driven repro, logs/devtools) and disciplined tooling/documentation across Azure DevOps, Jira/Rally, and Confluence.

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HS

Hardi Shah

Screened

Junior Software Engineer specializing in distributed systems, DevOps, and observability

Boston, MA2y exp
Pacific Northwest National LaboratoryNortheastern University

Built and launched a verified listings system for Burrow (student subleasing) after interviewing ~50 students about scam/fake listing concerns; chose a lightweight .edu-based verification approach to ship fast and then iterated with badges and clearer details, reducing churn from 15% to 7%. Also ran an LLM A/B test for auto-generating listing descriptions and improved trust/accuracy by updating prompts to prevent hallucinated details.

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NS

Nikhil Sajeev

Screened

Senior Client Success & Implementation Partner specializing in healthcare SaaS

Hayward, CA10y exp
QventusUniversity of Massachusetts Dartmouth

Enterprise healthcare SaaS implementation and customer success leader focused on OR/clinic scheduling optimization, owning end-to-end deployments from discovery through training, adoption, and renewal across multi-hospital systems. Strong analytics/ROI storytelling (Tableau/Looker, QBRs) linking AI-driven outreach and block release workflows to increased case volume and improved block utilization, and experienced partnering with Product/Sales to resolve integrations and drive roadmap/upsell outcomes.

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SW

Sam Wiley

Screened

Junior Full-Stack Software Engineer specializing in web, mobile, and cloud infrastructure

New York, NY1y exp
Omega BlackLehigh University

Built a demo-live LangGraph/LangSmith LLM agent that translates natural language into SQL against a self-built MLB statistics database, using a vector-store knowledge base of example queries. Focused on predictable orchestration via conditional nodes, YAML-driven behaviors, and tool-gated function calling, with testing via LangSmith and Python scripts.

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VV

Varun Vekaria

Screened

Junior Full-Stack Software Developer specializing in AI-powered web and health applications

New Brunswick, NJ2y exp
Rutgers University – BMIHAIRutgers University

Built and launched “Language AI,” a Next.js/TypeScript app that clones a user’s voice (via ElevenLabs) to deliver language lessons in their own voice, using Supabase for auth/Postgres/storage and hosting backend on Render. Post-launch, identified ElevenLabs voice-clone limits after initial users and reworked the pipeline to store audio assets and delete clones to support more concurrent users; also added Google auth to improve adoption. Previously worked in a high-growth startup environment (Study Park) taking concepts from ideation to production.

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Vidit Naik — Junior AI/ML & Full-Stack Engineer specializing in LLMs and RAG systems in San Francisco, CA

Vidit Naik

Screened

Junior AI/ML & Full-Stack Engineer specializing in LLMs and RAG systems

San Francisco, CA2y exp
Checksum AIUC Riverside

Forward-deployed engineer who built a production AI drone-control chatbot that lets users fly a drone via natural language while viewing a real-time feed. Implemented RAG over drone SDK documentation (vector DB + top-k retrieval) and LoRA fine-tuning, with a focus on latency, token efficiency, and cost reduction, and regularly works with non-technical clients to integrate and explain AI system architecture.

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Branden Lee — Senior Full-Stack Software Engineer specializing in React/TypeScript and Spring/Go

Branden Lee

Screened

Senior Full-Stack Software Engineer specializing in React/TypeScript and Spring/Go

6y exp
Clarity InnovationsNortheastern University

Software engineer/SME who owned customer-facing features in a tanker planning/scheduling domain, spanning UI, database migrations, and REST APIs. Drove major performance improvements by shifting complex pairing logic from a React/TypeScript frontend into a backend BFF (cutting load time from ~3 minutes to ~30 seconds) and led cross-team event-driven integrations using RabbitMQ and hexagonal architecture. Also built an internal OpenLayers-based mapping library adopted across multiple apps via Nexus.

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Chandana Arikacherla Nagendran — Mid-level Full-Stack Developer specializing in Java, Spring Boot, and Angular in Columbus, Ohio

Mid-level Full-Stack Developer specializing in Java, Spring Boot, and Angular

Columbus, Ohio4y exp
Ohio Industrial CommissionFranklin University

Full-stack engineer who modernized mission-critical legacy COBOL/AS400 systems into a Java + Angular/TypeScript web application, owning backend APIs, UI, database performance tuning, and JWT security end-to-end. Built and transitioned an internal docketing/hearing scheduling system with complex business rules, emphasizing smooth adoption, performance, and quality through phased agile delivery.

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Shivam Lahoti — Junior Full-Stack Software Engineer specializing in TypeScript/React and microservices in Boston, USA

Shivam Lahoti

Screened

Junior Full-Stack Software Engineer specializing in TypeScript/React and microservices

Boston, USA2y exp
Northeastern UniversityNortheastern University

Software engineer who built and owned an internal workflow automation + analytics platform end-to-end (TypeScript/React/Node) with a microservices, RabbitMQ-based async architecture. Drove adoption by shipping iterative prototypes and prioritizing reliability/performance (Redis caching, query optimization), delivering ~30–35% latency improvements and ~30–40% reduction in manual operational work.

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Mohith Venkata — Mid-level Full-Stack Developer specializing in cloud-native APIs and data workflows in Tukwila, WA

Mid-level Full-Stack Developer specializing in cloud-native APIs and data workflows

Tukwila, WA4y exp
Reshmi’s Group Inc.Seattle University

Built and owned end-to-end ordering and inventory/order management systems for a wholesale distributor, delivering an MVP quickly and iterating based on direct observation of daily users. Experienced with TypeScript/React + Node.js layered architectures and microservices using RabbitMQ, including real-world scaling issues (duplicates, backpressure) and observability practices (correlation IDs, structured logging).

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Hiteksha Godhani — Mid-level Full-Stack Developer specializing in microservices and cloud-native web apps in Canada

Mid-level Full-Stack Developer specializing in microservices and cloud-native web apps

Canada6y exp
TeradataGujarat Technological University

Frontend engineer who has led customer-facing web products end-to-end, with strong emphasis on scalable component architecture, design systems, and automated quality gates (CI + unit/integration/E2E). Experienced building complex React+TypeScript dashboards with thoughtful state separation and shipping fast via feature flags/canary releases while monitoring and optimizing real-world performance issues.

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Santhoshi Priya Sunchu — Mid-level Data Scientist specializing in NLP and predictive modeling in Massachusetts, USA

Mid-level Data Scientist specializing in NLP and predictive modeling

Massachusetts, USA5y exp
Blue Cross Blue Shield of MassachusettsUniversity of Massachusetts Dartmouth

AI/ML practitioner in healthcare/insurance (Blue Cross Blue Shield) who built and deployed a production NLP system to classify patient risk from unstructured clinical notes. Experienced in end-to-end pipeline orchestration (Airflow, AWS Step Functions/Lambda/SageMaker) and real-time optimization (BERT to DistilBERT on AWS GPUs), with strong clinician collaboration to drive adoption.

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Maheswar Mekala — Mid-level Machine Learning Engineer specializing in NLP, recommender systems, and MLOps in OH, USA

Mid-level Machine Learning Engineer specializing in NLP, recommender systems, and MLOps

OH, USA5y exp
General MotorsUniversity of Dayton

ML/LLM engineer with production experience at General Motors building Transformer-based search and recommendation personalization for a high-traffic vehicle platform. Delivered significant KPI gains (17% conversion lift, 14% bounce-rate reduction) and optimized real-time inference via ONNX Runtime and INT8 quantization while implementing robust MLOps (Airflow/MLflow, monitoring, drift-triggered retraining) and stakeholder-facing explainability/dashboards.

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Ashank Dsouza — Senior Full-Stack Software Engineer specializing in cloud-native web platforms in Bengaluru, KA

Ashank Dsouza

Screened

Senior Full-Stack Software Engineer specializing in cloud-native web platforms

Bengaluru, KA4y exp
TecnotreeArizona State University

Engineer with startup experience who emphasizes disciplined Agile execution (requirements analysis, Jira tasking, sprint planning) and production readiness (testing/QA/PR review). Uses profiling/logging for high-observability debugging and prioritizes incidents by impact. Has demoed engineering processes and worked directly with a client (Canadian music service) to position product capabilities and future extensions to drive adoption.

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Jitesh Kumar S — Junior Machine Learning Engineer specializing in NLP, computer vision, and MLOps in Lafayette, IN

Junior Machine Learning Engineer specializing in NLP, computer vision, and MLOps

Lafayette, IN3y exp
YaarcubesUniversity of Maryland, College Park

ML/LLM engineer with Meta experience building production AI systems for near real-time user-report classification and summarization under strict latency (<250ms), safety, cost, and privacy constraints. Has hands-on MLOps/orchestration experience (Airflow, Spark, MLflow, Kubernetes, Docker, GitHub Actions) plus observability (Prometheus/Grafana) and applies rigorous evaluation, staged rollouts, and A/B testing to keep agent workflows reliable in production.

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Surya Danturty — Intern AI/ML Engineer specializing in computer vision and time-series forecasting in Riverside, CA

Intern AI/ML Engineer specializing in computer vision and time-series forecasting

Riverside, CA0y exp
University of California, RiversideUC Riverside

Undergrad who built a production RAG chatbot for a messy college website using OpenAI embeddings + FAISS, overcoming hard-to-crawl/non-selectable site content and strict API budget limits. Applies information-retrieval best practices (section-based chunking with overlap, precision/recall evaluation) and reliability techniques (edge-case testing, similarity thresholds, fallback responses), and has experience scaling similar indexing work to ~300,000 Wikipedia pages.

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Butchi Venkatesh Adari — Mid-level Machine Learning Engineer specializing in LLM platforms and robotic perception in NewYork, NY

Mid-level Machine Learning Engineer specializing in LLM platforms and robotic perception

NewYork, NY4y exp
Alpheva AIWorcester Polytechnic Institute

Built and shipped a production multi-agent personal financial assistant at AlphevaAI on AWS ECS, combining FastAPI microservices, Redis/SQS orchestration, and Pinecone-based hybrid RAG (semantic + BM25) to ground financial guidance. Improved routing accuracy with an embedding-based SetFit + logistic regression intent classifier feeding an LLM router, and optimized UX with live streaming plus cost controls via model tiering and caching.

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Akshay Katageri — Mid-level AI Engineer specializing in multi-agent systems and RAG in Jersey City, NJ

Mid-level AI Engineer specializing in multi-agent systems and RAG

Jersey City, NJ4y exp
Elevance HealthPace University

Built and shipped a production LangGraph-based multi-agent LLM analytics/decision copilot that answers questions across SQL/BI systems and unstructured docs, emphasizing grounded, tool-verified outputs with citations and confidence gating. Deep hands-on experience with orchestration (LangGraph, CrewAI, OpenAI Assistants, MCP) plus real-world latency/cost optimization (vLLM batching/KV caching, speculative decoding, quantization) and rigorous eval/observability. Partnered closely with business/ops stakeholders to deliver explainable reporting automation, cutting manual reporting time by 50%+.

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