Vetted AWS IAM Professionals

Pre-screened and vetted.

YV

Senior Software Engineer specializing in distributed systems and agentic AI platforms

Orlando, FL6y exp
AtlassianNorthwestern University
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BC

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

Arlington, VA5y exp
CoforgeWilmington University
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SK

Mid-level Full-Stack Software Engineer specializing in cloud-native and AI-driven applications

6y exp
Fidelity InvestmentsUniversity of Texas at Dallas
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ST

Senior Site Reliability Engineer specializing in multi-cloud, Kubernetes, and observability

Stamford, CT9y exp
Vanguard
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TS

Mid-level Platform Engineer specializing in cloud infrastructure and DevOps

New York, NY6y exp
Atlassian
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TM

Senior Data Engineer specializing in cloud data platforms and big data pipelines

Austin, TX11y exp
Accenture
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DS

Senior AWS Architect specializing in cloud, network security, and generative AI

15y exp
Amazon Web Services
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AC

Mid-level AI/ML Engineer specializing in LLM applications and cloud-native systems

Remote2y exp
PYRAMYDCarnegie Mellon University

LLM engineer who has shipped production AI systems, including an RFP requirements extraction platform (OpenAI o4-mini + Azure AI Search + FastAPI) achieving 90%+ accuracy and ~5x throughput through grounding, structured outputs, parallelization, and caching. Also partnered with legal/compliance stakeholders at Nexteer Automotive to deliver an AI document comparison tool with traceability and confidence indicators, adopted by non-technical users and saving ~2 FTEs of review time.

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DV

Senior Software Engineer specializing in cloud backend systems and LLM-powered agents

Seattle, WA5y exp
AmazonSan José State University

Amazon Fire TV Devices engineer who built and shipped a production LLM-powered lab triage and validation system that grounds recommendations in internal runbooks/known-issue data and pushes evidence-based actions via dashboards and Slack. Emphasizes safety and measurability with structured JSON outputs, replay-based evaluation on historical incidents, and production metrics (e.g., disagreement rate and time-to-first-action), plus cost/latency optimizations like caching, batching, and rule-based fast paths.

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CR

Mid-Level Software Engineer specializing in distributed systems and cloud-native platforms

Austin, TX5y exp
AMDNortheastern University

Backend/AI engineer who built and scaled an internal AMD semiconductor manufacturing microservice platform (SMR), reworking a synchronous lot-request workflow into an event-driven RabbitMQ/Celery/FastAPI pipeline. Diagnosed and fixed peak-load reliability issues using deep observability and Kubernetes autoscaling, cutting notification latency back to sub-second and reducing duplicates via idempotency/DLQs. Also shipped an LLM-powered natural-language search with schema-constrained JSON outputs and guardrails, plus a plan-execute-verify Jira bug-resolution agent that can propose fixes and raise PRs under restricted permissions.

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SK

Sahithi K

Screened

Mid-level Data Engineer specializing in cloud data platforms and streaming pipelines

Boston, MA4y exp
ModernaUniversity of Massachusetts Dartmouth

Data engineer with experience at Moderna and Block owning high-volume (≈10TB/day) production pipelines on AWS, using Kafka/S3/Glue/dbt/Snowflake with strong data quality and observability practices (schema validation, anomaly detection, CloudWatch monitoring). Also built external financial API ingestion with Airflow retries, throttling/token rotation, and schema versioning, and helped stand up an early-stage biomedical data platform with CI/CD and incident debugging.

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Anu Baluguri - Mid-Level Software Engineer specializing in cloud-native microservices and event-driven systems in San Francisco, CA

Anu Baluguri

Screened

Mid-Level Software Engineer specializing in cloud-native microservices and event-driven systems

San Francisco, CA4y exp
AtlassianUniversity of Southern Mississippi

Full-stack engineer with production experience at Atlassian and Zoho, spanning GraphQL federation, React/TypeScript frontends, and cloud-native AWS/Kubernetes operations. Built and operated a federated GraphQL gateway with Terraform + CI/CD + observability, delivering major latency and integration-time improvements, and also designed high-volume Kafka data pipelines (10M+ events/day) with strong reliability guarantees.

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Saiteja Gaddam - Mid-Level Data Engineer specializing in cloud data platforms and streaming analytics

Mid-Level Data Engineer specializing in cloud data platforms and streaming analytics

3y exp
IntuitUniversity at Buffalo

Data engineer (Intuit) who owned an end-to-end telemetry and subscription analytics platform processing ~22M events/day, built on Kinesis/S3/Glue/Spark/Airflow/Redshift. Strong focus on reliability and data quality (schema drift controls, quarantine layers, idempotent reruns) and performance tuning, achieving a reporting latency reduction from ~15 minutes to under 4 minutes while enabling revenue and churn analytics for business teams.

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Ranganayak Meravath - Mid-level Generative AI Engineer specializing in RAG, agentic copilots, and regulated AI

Mid-level Generative AI Engineer specializing in RAG, agentic copilots, and regulated AI

5y exp
LPL FinancialUniversity of North Texas

Senior engineer who built and productionized an Azure-based Enterprise AI Copilot for financial/compliance teams, focused on grounded, auditable answers with citations to reduce hallucinations in regulated workflows. Experienced designing multi-step agent orchestration and improving reliability through targeted iterations (e.g., fixing chunking/parsing to materially improve citation accuracy), plus building defensive pipelines for messy ERP/operational finance data.

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HK

Mid-level Full-Stack Software Engineer specializing in cloud and data platforms

Boston, MA5y exp
Northeastern UniversityPenn State University

Full-stack engineer with experience spanning Amazon IMDb and Northeastern’s NeuroJSON portal, combining consumer product work with complex scientific data applications. Built IMDb’s streaming providers feature—described as the company’s most impactful feature of 2023—and has hands-on experience with React/Angular, GraphQL, AWS, Python services, and production monitoring.

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PP

Senior Backend Software Engineer specializing in cloud, microservices, and AI systems

Richardson, TX8y exp
The University of Texas at DallasUniversity of Texas at Dallas

Built an AI-powered job outreach application for his own job search and took it from idea to production use, owning architecture, FastAPI backend, retrieval/generation pipeline, frontend workflow, deployment, and iteration. Especially compelling for teams needing a pragmatic full-stack engineer who can turn LLM-based product ideas into usable, maintainable tools with measurable workflow impact.

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TY

Timothy Yeav

Screened

Senior AI/ML Engineer specializing in Generative AI and FinTech

Bronx, NY8y exp
InsitroNew York City College of Technology (CUNY)

Built end-to-end LLM/RAG systems for biological data and scientific literature analysis in a drug discovery setting, helping researchers explore disease insights and treatment hypotheses faster. Combines applied GenAI product work with strong production engineering, including monitoring, retrieval optimization, reusable Python services, and scalable deployment on AWS/Kubeflow.

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XQ

Junior Software Engineer specializing in data engineering for satellite telemetry

Berkeley, CA3y exp
NASA Jet Propulsion LaboratorySan Jose State University

Data/pipeline engineer with experience in space and scientific data systems, including JPL-related satellite transmission workflows and customer deployments involving NOAA/Argo standards. Stands out for building autonomous production pipelines, debugging subtle logic failures in data integrations, and improving processing efficiency while reducing manual operational work.

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SR

Mid-level Software Engineer specializing in backend systems, AI automation, and SaaS

Sunnyvale, CA5y exp
FlashyFablesUniversity of Texas at Dallas

Full-stack engineer who built and owned a production real-estate search platform (advanced search + saved-search alerts) using Next.js App Router/TypeScript with a NestJS + Postgres + Elasticsearch/Kafka backend. Demonstrated strong performance engineering (map search FPS ~20→60, ~80% latency reduction) and backend scalability (optimized alert-matching queries and orchestrated notification workflows with Airflow/Redis), with measurable post-launch engagement gains (+27% returning users).

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SA

Mid-level Full-Stack Engineer specializing in AI-driven data platforms

Santa Barbara, CA5y exp
UberUniversity of Alabama at Birmingham

Full-stack engineer with 5+ years of experience who built real-time data visualization and analytics systems at Uber, spanning React/TypeScript frontends, Node/GraphQL services, Kafka pipelines, and PostgreSQL. Particularly compelling for teams needing a hands-on builder who can turn ambiguous customer needs into scalable products, and who has also applied RAG with LangChain/OpenAI over 1.8M support files to surface actionable insights.

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Sunil Chinthaparthi - Senior Software Engineer specializing in cloud-native backend and distributed systems in New York, NY

Senior Software Engineer specializing in cloud-native backend and distributed systems

New York, NY4y exp
Best BuyPace University

Backend engineer focused on Python/FastAPI microservices running on Kubernetes (AWS EKS) with strong GitOps/CI/CD ownership (GitHub Actions + ArgoCD). Demonstrated measurable performance wins (p95 latency cut from >1s to <200ms) and production reliability work across Kafka/Redis streaming and cloud-to-on-prem migrations (RDS/S3 to Postgres/MinIO) using parallel validation and checksum-based consistency checks.

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PP

Intern Software Engineer specializing in distributed systems and security

San Jose, CA6y exp
AnyLogUniversity of Pennsylvania

Built a production LLM-powered analyst assistant at Discern Security to speed up SOC investigations using a RAG pipeline over security vendor documentation (Python PDF ingestion, vector search). Demonstrates deep, security-critical LLM engineering: structure-aware chunking with custom table parsing, grounded/cited responses, prompt-injection defenses, and post-generation validation, validated via golden datasets and adversarial testing; tool is used daily by analysts.

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