Vetted System Design Professionals

Pre-screened and vetted.

Nivid Shah - Mid-level Software Engineer and Data Scientist specializing in scalable data systems in California, USA

Mid-level Software Engineer and Data Scientist specializing in scalable data systems

California, USA5y exp
WalmartHarvard University
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EW

Entry-Level Software Development Engineer specializing in AWS serverless and distributed systems

Sunnyvale, CA1y exp
AmazonUSC
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LW

Senior Software Engineer specializing in backend, AI-driven compliance, and data platforms

Michigan, USA8y exp
MetaWayne State University
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YH

Mid-level Site Reliability Engineer specializing in AI training infrastructure and GPU platforms

Sunnyvale, CA2y exp
Alibaba CloudUC San Diego
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MC

Senior Software Engineer specializing in scalable backend systems and full-stack web apps

Austin, TX11y exp
IndeedCarnegie Mellon University
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LZ

Senior Software Engineer specializing in AI workflow orchestration and distributed systems

Foster City, CA10y exp
Relay.appUniversity of Pittsburgh
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PT

Executive Digital & Product Leader specializing in mobile, loyalty, and customer experience

Miami, FL26y exp
ABBIGeorge Washington University
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YC

Intern Software Engineer specializing in AI/ML and LLM retrieval systems

San Francisco, CA1y exp
RipplingUniversity of Pennsylvania
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BC

Director-level Software Engineering Leader specializing in cloud platforms and large-scale systems

Arizona, US19y exp
AmazonYoungstown State University
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EC

Staff Full-Stack Software Engineer specializing in scalable web platforms and cloud infrastructure

San Francisco, CA12y exp
GustoCal Poly Pomona
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BA

Director-level Engineering & AI Product Leader specializing in GenAI and cloud platforms

South Pasadena, CA18y exp
dscoutTechnion – Israel Institute of Technology
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DP

Senior Full-Stack Engineer specializing in telehealth and commerce platforms

Seattle, WA11y exp
AmwellUniversity of Washington
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WM

Principal Software Engineer specializing in cybersecurity distributed systems

Ridgewood, NY12y exp
Palo Alto NetworksBoston University
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ML

Senior Software Engineer specializing in full-stack platforms, MLOps, and LLM search

Foreman, Arkansas10y exp
IQVIAUniversity of Florida
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JL

Senior Software Engineer specializing in full-stack platforms and FinTech systems

Boston, MA17y exp
BCGNYU
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VB

Mid-level Software Engineer specializing in distributed systems and payments

New York, NY4y exp
PhonePeNYU
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BB

Senior Full-Stack Engineer specializing in AI, cloud, and enterprise platforms

Indianapolis, IN12y exp
SalesforceStony Brook University
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RT

Rhutwij Tulankar

Screened ReferencesStrong rec.

Engineering Manager and ML/Data Architect specializing in scalable data platforms and personalization

San Francisco, CA11y exp
RecruiticsRochester Institute of Technology

Hands-on engineering manager at a marketing company leading a highly senior, distributed team (10 direct reports) while personally coding ~60–70% and owning end-to-end architecture across three interconnected products. Built agentic CRM automation and a reinforcement-learning-driven distribution layer for channel spend/bidding, with a strong focus on scalable design and observability (Prometheus/APM/logging) enabling frequent releases and few production incidents.

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CM

Chris Michaelson

Screened ReferencesStrong rec.

Executive engineering leader specializing in cloud platforms, DevOps, and enterprise modernization

Tampa, FL17y exp
PwCOregon Institute of Technology

Senior engineering leader with experience across cybersecurity, retail commerce, consulting, and media platforms, combining large-scale org leadership with hands-on architecture depth. Notable for driving measurable cloud modernization outcomes—multi-million-dollar cost savings, major latency and MTTR reductions, and compliance-heavy transformations—while also leading AI/NLP and consumer product simplification initiatives.

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BF

Brian Frisch

Screened ReferencesStrong rec.

Director-level engineering leader specializing in high-scale cloud platforms

Lawndale, CA21y exp
ICE Mortgage TechnologyUSC

Engineering leader and player-coach with a long tenure leading 5 teams/17 engineers, combining organizational leadership with hands-on SQL, architecture, and production incident work. Particularly notable for shipping AI-powered lead engagement systems like an intelligent voice agent, while also driving operational improvements such as release cadence standardization, team restructures, database migrations, and major rules-engine performance gains.

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Vigynesh Bhatt - Mid-level Software Engineer specializing in backend, cloud, and ML systems in Salt Lake City, UT

Vigynesh Bhatt

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in backend, cloud, and ML systems

Salt Lake City, UT4y exp
Goldman SachsBrigham Young University

Software engineer with experience across Goldman Sachs, BYU Broadcasting, Juniper Networks, and an edtech startup (Doubtnut), spanning data migrations, AWS-based media backends, and microservices observability. Built a Redis/ElastiCache caching layer in front of DynamoDB/S3 to improve media delivery latency and cost, and created an SEO indexing automation tool using the Google Search Console API that saved ~15–30 person-hours per day.

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Andrew Fares - Mid-level Data Engineer specializing in AI, GenAI, and cloud data platforms in Seattle, WA

Andrew Fares

Screened ReferencesStrong rec.

Mid-level Data Engineer specializing in AI, GenAI, and cloud data platforms

Seattle, WA4y exp
AmazonMaryville University

Built production AI systems inside AWS finance/procurement, including an LLM-based supplier quote classification and price-vetting workflow that drove $5M in savings over 3 months. Combines GenAI evaluation expertise, internal platform design, and reusable Python data-quality tooling with strong cross-functional execution across finance, accounting, and hardware engineering.

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GK

Mid-level AI/ML Engineer specializing in LLMs, RAG, and multimodal deep learning

San Francisco, CA5y exp
MetaUniversity of Central Missouri

ML/LLM engineer who has built and productionized a large multimodal LLM pipeline end-to-end—fine-tuning a 20B+ parameter model with distributed/FSDP training and deploying on Kubernetes via Triton for ~5x throughput. Strong focus on reliability and safety (monitoring with SHAP, guardrails, A/B testing) with reported ~22% relevance lift and reduced harmful/incorrect outputs, plus experience orchestrating ETL/retraining workflows with Airflow across S3/Snowflake/RDS.

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