Vetted Error Handling Professionals

Pre-screened and vetted.

SR

Mid-level Software Engineer specializing in full-stack web applications

Maryland, USA5y exp
MetaIllinois Institute of Technology
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BK

Balpreet Kaur

Screened

Junior Machine Learning Engineer specializing in LLMs and data pipelines

Amherst, MA2y exp
Google DeepMindUniversity of Massachusetts Amherst

Research Extern at Google DeepMind and former AWS Software Development Engineer Intern with a strong focus on practical, trustworthy AI engineering. Built a multi-agent RAG system for personalized news headline generation using a fine-tuned Flan-T5 model, parallel critic agents, FAISS retrieval, and style embeddings, while also leading a 3-person team on the project.

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EX

Elizabeth Xu

Screened

Entry-Level Software Engineer specializing in ML/NLP and security

Evanston, IL1y exp
RakutenNorthwestern University

Early-career engineer (internship background) who built a production-style notes product using Next.js App Router with Server Components/Server Actions and a Postgres-backed analytics model. Demonstrates strong performance and reliability instincts—measured DB latency improvements via indexing and cursor pagination, plus durable orchestration with Temporal using idempotency and deterministic workflows.

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Likhitha Bethi - Mid-level Software Engineer specializing in backend systems, distributed systems, and applied AI in Stony Brook, NY

Mid-level Software Engineer specializing in backend systems, distributed systems, and applied AI

Stony Brook, NY4y exp
Stony Brook UniversityStony Brook University

Goldman Sachs engineer who owned end-to-end features for an internal onboarding and case management platform, spanning React/TypeScript UI, a GraphQL gateway, and Node + Spring WebFlux microservices. Built and operated a Kafka-based ingestion and search pipeline with DLQs, retries, idempotency, and strong observability, and improved developer experience via backward-compatible GraphQL API design and schema-driven documentation.

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Yeshwanth Sai Pala - Mid-level Full-Stack Developer specializing in cloud microservices and AI-driven FinTech in Remote, USA

Mid-level Full-Stack Developer specializing in cloud microservices and AI-driven FinTech

Remote, USA4y exp
StripeSouthern Arkansas University

Stripe engineer who shipped an end-to-end merchant fraud insights dashboard, spanning Spring Boot/Kafka risk-scoring services and a React+TypeScript UI. Focused on low-latency, high-volume transaction processing and production operations on AWS (EKS/CloudWatch), including handling a real traffic-spike latency incident via query optimization, indexing, and rate limiting.

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YR

Senior Data Engineer specializing in cloud-native data pipelines and lakehouse platforms

6y exp
MicrosoftUniversity of North Texas

Data engineer at Microsoft who owned an end-to-end subscription analytics platform processing 7TB+ daily across 40+ pipelines, combining ADF batch ingestion with Kafka/Spark streaming and rigorous Great Expectations quality gates. Built a Fabric-based self-service ingestion platform with CI/CD and observability, plus a Databricks feature store serving near-real-time ML inference with Delta Lake reliability and versioning.

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NS

Nitin Sunda

Screened

Mid-level Software Engineer specializing in FinTech and GenAI platforms

Seattle, WA4y exp
AmazonNortheastern University

Candidate describes a development approach centered on AI-assisted coding, testing, and agent-driven workflows, including production exposure to multi-agent systems and governance-oriented logging. They appear particularly focused on combining AI speed with structured validation through unit tests, boundary tests, and edge-case monitoring.

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PT

Mid-level Software Engineer specializing in full-stack backend systems and FinTech

Austin, TX4y exp
IntuitUniversity of Central Missouri

Senior frontend engineer focused on complex internal operations and payment products, with deep experience building React/TypeScript dashboards for payments, subscriptions, and observability workflows. Stands out for going beyond UI implementation to shape API contracts, real-time architectures, performance strategy, and product behavior across support, finance, and engineering use cases.

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SB

Mid-level AI/LLM Engineer specializing in generative AI and ML systems

Remote, USA4y exp
NetflixMissouri University of Science and Technology

AI/LLM-focused engineer with hands-on experience building RAG pipelines, prompt engineering workflows, and multi-agent systems using tools like LangChain. Stands out for combining AI-assisted development with production-grade validation and for leading the architecture/orchestration of agent-based recommendation systems that improved response time, accuracy, and scalability.

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Michael Kilgore - Mid-Level Software Development Engineer specializing in AWS data pipelines and forecasting systems

Mid-Level Software Development Engineer specializing in AWS data pipelines and forecasting systems

3y exp
AmazonUniversity of Washington Bothell

Built and deployed (via an Upwork contract) an LLM-powered agent for options trading that detects large options trade events, enriches them with market/filing data (price history, earnings transcripts, insider trading), and delivers recommendations via Telegram. Implemented schema-constrained outputs (Pydantic/Google GenAI), robust orchestration, logging, and error-notification handling, plus vector-DB-based reuse of prior outputs to improve consistency.

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OA

Omar Ali

Screened

Entry-level Data Scientist specializing in AI evaluation and analytics

San Francisco, CA1y exp
OpenAIUC San Diego

Built both traditional data infrastructure and LLM-powered product workflows, spanning a Python/SQL ETL deployment at Amazon and an adaptive learning system for their DataLingo platform. Particularly interesting for roles at the intersection of data engineering, applied AI, and customer-facing product delivery, with hands-on experience stabilizing probabilistic LLM systems in production.

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BW

Boyun Wang

Screened

Junior AI Agent Engineer specializing in regulated healthcare software

Berkeley, CA3y exp
Echelon DiagnosticsUC Berkeley

Built and deployed PIKA, an internal multi-agent platform for FDA-regulated software development, owning it from concept through production. The candidate combines strong full-stack engineering with rigorous LLM orchestration, human-in-the-loop controls, and production eval systems, delivering measurable impact: 3x more design issues caught, ~90% fewer false positives, and ~40% efficiency gains on documentation-heavy workflows.

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BP

Mid-level Software Engineer specializing in backend microservices and API development

Remote, USA6y exp
NetflixUniversity of North Texas
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JR

Mid-level Frontend Engineer specializing in cloud enterprise applications

East Palo Alto, CA3y exp
Amazon Web ServicesSaint Petersburg State University of Economics
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VR

Intern Software Engineer specializing in Generative AI and RAG systems

3y exp
MicrosoftUniversity of Massachusetts Amherst
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SS

Surya Singh

Screened ReferencesModerate rec.

Mid-level AI/ML Engineer specializing in FinTech and fraud detection

United States4y exp
PayPalCalifornia State University, Fullerton

ML/backend engineer with PayPal experience building high-stakes production systems, including a GenAI internal support assistant and a real-time fraud scoring pipeline. Strong in Python/FastAPI, model-serving infrastructure, RAG architecture, and production observability, with clear readiness to transition those backend patterns into a TypeScript stack.

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EA

Mid-level Full-Stack Software Engineer specializing in web platforms

Overland Park, KS4y exp
AppleUniversity of Central Missouri

Full-stack web developer with hands-on ownership of products from requirements through launch and maintenance, building across React and Node.js. Stands out for balancing product usability with technical performance, including API/database optimizations that improved performance by about 30% and shipping real-time dashboard features with scalable frontend/backend tradeoffs.

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RM

Rohith M

Screened

Mid-level Full-Stack Developer specializing in AWS serverless and Java/Spring

Austin, Texas6y exp
AppleUniversity of Bridgeport

Built and shipped a production generative-AI recipe feature on AWS serverless (Lambda + Bedrock), evolving it post-launch from fully AI-generated outputs to user-guided structured generation based on real usage patterns and system metrics. Emphasizes reliability via prompt constraints plus deterministic validation, with automated/human eval loops and CloudWatch-based observability to manage latency, cost, and output consistency.

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Shuju Sun - Mid-Level Software Engineer specializing in real-time data pipelines and ML deployment in PA, USA

Shuju Sun

Screened

Mid-Level Software Engineer specializing in real-time data pipelines and ML deployment

PA, USA4y exp
VanguardUSC

Ticketmaster data engineer who built CDC-driven Kafka pipelines feeding Snowflake for analytics and data science teams. Hands-on in production operations—scaled Kafka during sudden playoff-driven transaction spikes and improved monitoring for preemptive scaling. Known for using small-batch experiments and quantitative metrics to align stakeholders and drive cost-saving architecture changes (e.g., buffering to reduce AWS Lambda invocation frequency).

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VK

Vasanthi Koya

Screened

Senior Full-Stack/Data Engineer specializing in cloud data pipelines for legal and financial platforms

Schaumburg, IL6y exp
DocuSignUniversity of Illinois Springfield

Data/analytics engineer who built and operated a DocuSign-based real-time analytics platform end-to-end, processing 20–50k webhook events/day with ~99.5% reliability. Strong in idempotent event processing, schema-evolution-safe ingestion (raw JSON + dynamic parsing), and serving data via versioned, low-latency REST APIs with solid CI/CD and observability.

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YY

Yuanhui Yang

Screened

Senior Software Engineer specializing in Python backend systems on AWS

Livermore, CA8y exp
ASMLShanghai Jiao Tong University

Backend/data engineer from ASML who modernized a legacy SAS-based statistical processing system into a cloud-native AWS platform (Lambda/FastAPI, Step Functions/EventBridge, Glue, S3/RDS) with strong reliability and data-quality practices. Demonstrated measurable performance wins (RDS query reduced from 90+ seconds to <5 seconds) and hands-on incident ownership for production ETL pipelines.

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Darsh Sharma - Mid-level Software Engineer specializing in ML systems and microservices in Madison, WI

Darsh Sharma

Screened

Mid-level Software Engineer specializing in ML systems and microservices

Madison, WI2y exp
TeradataUniversity of Wisconsin–Madison

Teradata Text Security intern who built a production LLM-powered planner agent that decomposes complex tasks into dependency-aware subtasks (DAG/topological graph) and executes them via a custom orchestrator with parallelism, status tracking, and error handling. Also contributed to an HR-facing internal document chatbot concept to streamline onboarding, showing cross-functional collaboration.

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Hansraj Pabbati - Senior Software Engineer specializing in AI/LLM systems and cloud backend platforms in Remote, CA

Senior Software Engineer specializing in AI/LLM systems and cloud backend platforms

Remote, CA8y exp
OracleSan Jose State University

Built and owned an end-to-end AI-powered natural-language-to-SQL deployment within Oracle OCI/Autonomous Database, including enrichment pipelines, RAG-based retrieval, SQL generation APIs, and post-launch monitoring. Stands out for combining LLM production engineering with strong guardrails, stakeholder management, and operational rigor around accuracy, latency, hallucination mitigation, and reliability.

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SS

Shubham Singh

Screened

Mid-level AI/ML Engineer specializing in speech, computer vision, and agentic GenAI

Pittsburgh, PA6y exp
Musing AICarnegie Mellon University

Built and shipped a production multi-agent, voice-based conversational assistant for older adults’ daily health management using Vertex AI, FastAPI, Firebase/Firestore, and Cloud Run, with a custom cross-session memory design to keep responses context-aware at low latency. Also partnered with caregivers/elderly users and health officials, translating needs into workflows and explaining HIV risk predictions with SHAP and dashboards.

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