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Vetted Workflow Automation Professionals

Pre-screened and vetted.

Workflow AutomationPythonSQLDockerAWSCI/CD
DC

Danilo Coccimiglio

Mid-level Full-Stack Engineer specializing in Java (Jakarta EE) and React/Angular

New York, NY6y exp
KPMG
HTMLCSSJavaScriptTypeScriptReactAngular+58
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JB

Jayeetra Bhattacharjee

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in LLMs, NLP, and analytics automation

Bristol, UK4y exp
TCSUniversity of Bristol

“AI/ML Engineer (TCS) who built and deployed a production LLM-powered audit transaction validation service to reduce manual review of unstructured transaction records and comments. Implemented a LangChain/Python pipeline for extraction/normalization and discrepancy detection, with strong production reliability practices (decision logging, dashboards, labeled eval sets) and a human-in-the-loop auditor feedback loop to improve precision/recall under strict data-sensitivity and near-real-time constraints.”

AWSAnomaly DetectionAuthenticationAutomationBusiness IntelligenceCI/CD+121
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SR

Sadek Rahman

Screened ReferencesModerate rec.

Mid-level Product Marketing & Events Leader specializing in B2B/B2C healthcare and SaaS

Toronto, Canada6y exp
Science&HumansUniversity of New Brunswick

“Partnerships and GTM operator with experience across healthcare and the creator ecosystem: sourced and negotiated influencer deals for hormone healthcare products, and leveraged a personal network to land a major B2B white-label partnership driving steady monthly B2C sales. At TELUS Health, led a Learning product relaunch from one-time purchases to subscriptions (28% conversion vs 30% goal) and built a webinar acquisition loop optimized through iterative conversion experiments.”

Account managementAnalyticsBudgetingCanvaContent strategyCRM+114
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MP

Manasa Pantra

Screened ReferencesStrong rec.

Junior Software Engineer specializing in AI, LLM systems, and full-stack development

Stony Brook, NY2y exp
Stony Brook UniversityStony Brook University

“Product-focused full-stack engineer at startup (Zippy) who shipped a production multi-agent AI system for restaurant operations plus payments workflows. Built end-to-end: RAG grounded on a Notion knowledge base, structured function-calling task routing, FastAPI/JWT multi-tenant backend, and a polished React+TypeScript owner dashboard. Has real production incident experience (duplicate Stripe webhooks) and reports ~94% task-routing accuracy under load.”

PythonCC++JavaScriptTypeScriptGit+161
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AD

Ashank Dsouza

Screened

Mid-level Full-Stack Developer specializing in Node.js/React and cloud DevOps

Bengaluru, India4y exp
TecnotreeArizona State University

“Software engineer with startup and capstone experience who improved an ~8-hour database refresh workflow by moving API calls to asynchronous execution and then addressing API rate limits via throttling. Emphasizes performance profiling/logging, strong developer onboarding documentation practices, and disciplined Agile/Jira bug triage and expectation-setting with stakeholders.”

.NETA/B TestingAgileAngularAPI DevelopmentCI/CD+60
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PK

Parth Kasat

Screened

Mid-level Forward Deployed Engineer specializing in AI automation for finance and data platforms

Remote2y exp
ArganoGeorge Washington University

“LLM/agentic workflow specialist with healthcare deployment experience who has taken LLM-based automation from prototype to production using operator-in-the-loop validation, RAG-style retrieval, RBAC, and monitoring for sensitive data compliance. Demonstrated real-time incident resolution (retrieval timeouts due to network/proxy misconfig) and strong GTM support—hands-on developer workshops and sales demos translating technical safeguards and real-time ETL into measurable ROI (70% ops reduction, ~$200K/year savings).”

A/B TestingAPI IntegrationAzure Data FactoryAzure DevOpsC++Containerization+124
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HS

HIMANSHU SHARMA

Screened

Mid-level AI Solutions Engineer specializing in enterprise GenAI and automation

Orlando, FL6y exp
Kore.aiUniversity of South Florida

“Built and shipped multiple production LLM/agentic systems, including an agentic RAG NL-to-SQL analytics app that cut manual reporting from 9 hours/week to 15 minutes by grounding on schema-aware retrieval and robust fallback/monitoring. Also implemented a LangChain supervisor-orchestrated enterprise IT automation agent that routes requests for search, identity validation, and action execution, and created a RAG search tool spanning Jira/Confluence/SharePoint for operations stakeholders.”

PythonPyTorchTensorFlowScikit-learnHugging Face TransformersSQL+121
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AK

AnilKumar Kanakadandila

Screened

Mid-level Data & AI Engineer specializing in data engineering, analytics, and LLM/RAG apps

San Francisco Bay Area, CA5y exp
VerizonCalifornia State University

“Built a production RAG-based “unified assistant” that consolidates siloed company documents into a single chatbot while enforcing fine-grained access control via RBAC/metadata filtering with OAuth2/JWT. Experienced orchestrating LLM workflows with LangChain/LangGraph + FastAPI (async + caching) and measuring performance via retrieval accuracy and response-time SLAs. Also delivered a churn analytics solution with dashboards and automated retention campaigns using n8n.”

PythonPandasNumPyScikit-learnSQLMySQL+105
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GJ

Golden Johansson

Screened

Executive Operations & Consulting Leader specializing in law firms and tribal enterprises

Parkland, FL18y exp
Golden Talent SolutionsArizona State University

“Operations leader (including COO experience) who has built and optimized internal operating systems for growing organizations, notably formalizing SOPs, org structure, KPIs/incentives, and business continuity for a scaling law firm. Also experienced translating board-level direction into executable, measurable plans at Seminole Tribe of Florida, using clear visuals and dashboards to mentor leaders without formal operations backgrounds.”

Operations ManagementProcess ImprovementStrategic PlanningBusiness DevelopmentChange ManagementBudgeting+114
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AD

Aelina Das

Screened

Senior Software Engineer specializing in risk systems and event-driven data pipelines

Whippany, NJ8y exp
BarclaysNortheastern University

“Backend engineer with recent Barclays experience building a Python asyncio + Kafka risk reporting service for trading desks, including a major refactor from blocking batch processing to event-driven incremental pipelines to restore intraday/EOD performance. Also shipped an applied AI feature using OpenAI fine-tuning to classify risk-breach severity and generate trader/risk-manager summaries with robust retry/fallback handling, plus demonstrated strong database/query optimization (triggers, materialized views, partial indexes) in a risk-limits/breaches domain.”

PythonJavaShell ScriptingMicrosoft SQL ServerSpring MVCSpring Framework+97
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AM

Amanda Melendez

Screened

Mid-level Customer Success Manager specializing in SaaS onboarding, adoption, and retention

San Francisco, CA8y exp
Together GroupsCalifornia State University, East Bay

“Customer Success/implementation leader with enterprise experience at ADP managing payroll tax compliance for major brands (e.g., McDonalds, Staples, Williams Sonoma) and coordinating closely with product/compliance/engineering to reduce errors and escalations. Also led cross-functional operational rollouts at Starbucks, improving customer satisfaction by 27%, and currently at Together Groups influencing product roadmap via therapist/participant feedback to lift onboarding engagement by 40%.”

Stakeholder ManagementA/B TestingProcess ImprovementCross-functional CollaborationAutomationJira+48
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RN

Runjeeth Nikam

Screened

Mid-Level Software Engineer specializing in Python backend, data engineering, and cloud microservices

New Jersey, USA6y exp
Abacus InsightsNJIT

“Backend-leaning full-stack engineer with production experience in both healthcare (claims enrichment/interoperability at Abacus) and finance (Goldman Sachs pricing/risk APIs + React dashboards). Built an event-driven AI grading platform using Postgres Debezium CDC + Kafka + FastAPI on AWS that cut manual grading ~70% and served 1000+ students, with strong emphasis on reliability, testing, and performance tuning.”

PythonSQLHTMLCSSJavaScriptTypeScript+116
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CK

Chad Kilgore

Screened

Senior Technical Designer specializing in gameplay systems, tools, and VR/AAA pipelines

Bellevue, WA17y exp
CamouflajIowa State University

“Game/technical designer with live-service ownership at Wargaming (World of Tanks) driving KPI-based monthly events and engagement loops via data-informed reward tuning. Recently shipped Batman Arkham Shadow by automating a narrative pipeline that converted script-graph dialogue into a string library, cutting weeks of work down to hours under aggressive deadlines. Experienced rapid prototyping in UE4 (including AI-driven mode logic) and cross-functional alignment practices.”

UnityUnreal EngineC#PythonNetworkingGit+70
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AH

Alex Haeberle

Screened

Director-level Platform Engineering Architect specializing in Internal Developer Platforms

Buffalo, NY8y exp
KyndrylColorado School of Mines

“Enterprise platform engineering leader who identified platform engineering as a major opportunity at Kyndryl and built an entire internal practice around it by codifying the offering and evangelizing it across leadership. Now exploring founding an agentic AI developer platform aimed at reducing variance and improving consistency in building/deploying cloud-native applications; has not raised capital yet.”

DevOpsCI/CDKubernetesDockerTerraformInfrastructure as Code+77
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DR

Dipanwita Rano

Screened

Entry-Level Software Engineer specializing in full-stack development and machine learning

College Station, TX0y exp
NatWestTexas A&M University

“Master’s CS candidate with backend internship experience modernizing live operational workflows at NatWest/NetWess, focusing on reliability improvements, safer CI/CD deployments, and incremental refactors using feature flags and rollback paths. Built FastAPI-based APIs with strong security patterns (JWT + 2FA/TOTP, centralized authorization, RLS) and demonstrated attention to edge cases like idempotency and data consistency in a Netflix-clone project.”

AgileArtificial IntelligenceCC++CI/CDCUDA+99
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NM

naveena musku

Screened

Senior AI/ML Engineer specializing in Agentic AI and LLM automation

8y exp
Western UnionJawaharlal Nehru Technological University

“Backend engineer focused on productionizing LLM systems: built a FastAPI-based RAG and multi-agent automation platform deployed with Docker/Kubernetes, prioritizing safe execution and reduced hallucinations. Experienced in refactoring monolithic ML services with feature-flagged incremental rollouts, and implementing JWT/RBAC plus row-level security (e.g., Supabase) for secure, scalable APIs.”

A/B TestingAWSAWS LambdaBigQueryCI/CDClaude+122
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SK

SaiRahulCharan Kotepalli

Screened

Mid-Level Software Engineer specializing in FinTech microservices and AI automation

New York City, United States3y exp
Bank of AmericaNJIT

“Backend engineer with experience evolving a real-time transaction and rewards processing platform from a tightly coupled architecture into domain-based microservices. Uses REST plus Kafka for synchronous vs. asynchronous workflows, and builds Python/FastAPI APIs with Pydantic contracts, Docker/Kubernetes deployments, and JWT/OAuth-based security; has also supported analytics/dashboard use cases (Power BI).”

JavaPythonJavaScriptRSQLC#+110
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PK

PHANINDRA KETHAMUKKALA

Screened

Senior GenAI/ML Engineer specializing in LLMs, RAG, and multimodal generative AI

USA4y exp
GE HealthCareFranklin University

“LLM/RAG engineer with production deployments in highly regulated domains (Frost Bank and GE Healthcare). Built secure, explainable document-grounded Q&A systems using LoRA fine-tuning, strict RAG with confidence thresholds, and citation-based responses; also established evaluation/monitoring (golden QA sets, hallucination tracking, drift) and achieved ~40% latency reduction through retrieval/prompt tuning.”

A/B TestingAgileApache KafkaApache SparkAWS GlueAWS Lambda+170
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SV

Sai Vamsi

Screened

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

TX, USA4y exp
ServiceNowUniversity of Arkansas at Little Rock

“ServiceNow engineer who built an AI-powered ticket summarizer end-to-end (RAG with vector DB + GPT, Redis latency optimizations, fallback summarization, and a React UI widget for agent feedback). Also has hands-on ROS 2 experience building real-time sensor-fusion nodes (LiDAR/IMU), debugging SLAM/navigation issues via rosbag + EKF tuning, and bridging heterogeneous robots by translating ROS 2 topics to MQTT/JSON. Strong DevOps background with Docker, Jenkins CI/CD, and Kubernetes orchestration for scalable deployments.”

JavaPythonJavaScriptReactAngularRedux+128
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AN

Adarsh Nandal

Screened

Mid-Level Backend Software Engineer specializing in Java/Spring microservices and AWS

Nashua, NH4y exp
MastercardRivier University

“Backend-focused engineer with production experience building Spring Boot services for automated workflow and data-processing platforms, using queues plus retry and idempotency patterns. Also uses Python to automate data processing; emphasizes testing and peer review for maintainability.”

JavaPythonGoC++JavaScriptTypeScript+101
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MR

Manichandra Reddy Bethi

Screened

Mid-level GenAI Engineer specializing in production AI agents and evaluation pipelines

Overland Park, Kansas5y exp
MinutentagWilmington University

“Built and shipped a production LLM-powered internal operations automation platform using LangChain RAG (Pinecone) and FastAPI microservices, deployed on AWS EKS, serving 10k+ daily interactions. Implemented a rigorous evaluation/observability stack (golden datasets, prompt regression tests, MLflow, retrieval metrics, hallucination monitoring) that drove hallucinations below 2% and improved reliability, and partnered closely with non-technical ops leaders to cut manual lookup work by 60%+.”

A/B TestingAlertingAWSAWS LambdaBERTCI/CD+120
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BB

Binaal Bopanna

Screened

Mid-level Solutions Engineer specializing in AI automation and hybrid cloud infrastructure

USA4y exp
American Family InsuranceIllinois Institute of Technology

“Built and productionized AI-driven insurance claims document intelligence/automation at American Family Insurance, integrating OCR/NLP models and a rules-based validation layer into existing claims systems via APIs. Delivered measurable impact (≈28% accuracy lift, ≈35% reduction in manual processing time) and modernized legacy workflows with phased cloud migration, feature flags, parallel runs, and CloudWatch-based monitoring.”

PythonTensorFlowPredictive AnalyticsMachine LearningAWSAmazon SageMaker+83
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HA

Hamad Alajeel

Screened

Intern Machine Learning & AI Automation Engineer specializing in ML workflows and AI hardware

Fort Lauderdale, FL0y exp
Revscale Technologies Inc.UC San Diego

“ML practitioner with hands-on experience adapting diffusion models (DDPM + U-Net in PyTorch) to improve low-dose CT medical imaging quality via denoising and upsampling against high-dose ground truth. Also built a RAG workflow during a recent internship by cleaning client survey data, embedding with OpenAI text-embedding-3-large, and indexing in Pinecone with MD5 deduplication, alongside a strong emphasis on production-grade Python practices.”

Azure DevOpsCC++Data PipelinesDeep LearningError Handling+116
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