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Vetted Feature Engineering Professionals

Pre-screened and vetted.

Feature EngineeringPythonSQLDockerscikit-learnTensorFlow
RC

Rohan Chickalkar

Senior Data/GenAI Engineer specializing in cloud-native ML, RAG, and real-time data platforms

Richardson, TX8y exp
ToyotaTexas A&M University
PythonScalaJavaRSQLShell Scripting+178
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SV

Suhuruth Veeramalla

Mid-level AI/ML Engineer specializing in recommendation, retrieval, and MLOps

San Francisco, CA5y exp
MetaConcordia University
PythonPyTorchTensorFlowScikit-learnNumPyPandas+127
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VS

Vignesh Shanmugasundaram

Screened

Junior Software Engineer specializing in full-stack development and applied ML

New York, NY2y exp
AmazonNYU

“Full-stack engineer with experience at Zoho and Amazon who has owned production systems end-to-end, including a monolith-to-microservices migration using Kafka and Cassandra that improved search latency ~25% and increased throughput without data loss. Also built a hackathon project (Buildwise) into a sold product for a construction company (AI-driven document compliance checks) and shipped an IoT-based parking availability MVP in 3 weeks.”

PythonCC++JavaJavaScriptSQL+163
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SN

Sharath Nyalakonda

Screened

Mid-level AI/ML Engineer specializing in NLP, graph models, and MLOps for FinTech and Healthcare

Remote, USA5y exp
StripeKent State University

“AI/ML engineer who has deployed production LLM/transformer-based systems for merchant intelligence and fraud/support optimization, delivering +27% merchant engagement and +18% payment success. Deep experience in privacy-preserving, PCI DSS-compliant data/ML pipelines (Airflow, AWS Glue, Spark, Delta Lake) and scalable microservices on Kubernetes, plus proven cross-functional delivery in healthcare claims analytics at UnitedHealth Group (12% HEDIS claim reduction).”

PythonpandasspaCyRSQLPySpark+185
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NM

Nehal Mahankali

Screened

Mid-level Full-Stack Python Developer specializing in cloud-native banking applications

6y exp
TruistPace University

“Backend engineer who built a low-latency real-time transaction API in Python/Flask, with strong depth in PostgreSQL/SQLAlchemy performance tuning (time-based partitioning, indexing, connection pooling). Has production experience integrating ML scoring and OpenAI-style APIs with safety/latency controls, and designing multi-tenant isolation strategies including per-tenant pooling/caching and premium-tenant isolation.”

PythonFlaskDjangoFastAPIJavaScriptTypeScript+104
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PP

Poorna Pedapudi

Screened

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

Seattle, WA5y exp
UberGeorge Mason University

“Software engineer focused on data platforms and applied LLM systems: built an internal data quality monitoring layer to catch silent data drift and iterated post-launch after finding ~30% false-positive alerts, reducing noise via dynamic baselines and improved structured logging. Also shipped a production RAG-based internal knowledge assistant over Jira/Confluence with citations, confidence-based fallbacks, and nightly automated evals to prevent regressions.”

GoPythonJavaJavaScriptTypeScriptC+++115
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SS

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).”

PythonJavaCC++ScalaGo+132
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SL

Sri Lekha Kandadai

Screened

Mid-level Machine Learning Engineer specializing in MLOps and multimodal AI

KS, USA5y exp
AppleUniversity of Central Missouri

“ML/AI engineer focused on production-grade model reliability: built a monitoring and validation framework to detect drift, trigger anomaly alerts/retraining, and maintain consistent performance for device intelligence workflows at scale. Strong MLOps background with Python pipelines, Docker/Kubernetes deployments, Airflow orchestration, and real-time monitoring dashboards; experienced partnering with product managers to deliver business-facing insights.”

PythonSQLRC++JavaMachine Learning+80
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MG

Mayuna Gupta

Screened

Senior Data Scientist specializing in computer vision and medical imaging

San Diego, CA4y exp
Schoeneberg LabUC San Diego

“Built and deployed an LLM-powered RAG system (PubChemRAG) for a 4D Mitospace project to compare mechanisms across a ~100-drug glossary and surface expected pathway/phenotypic differences in mitochondrial imaging. Worked closely with biochemistry and microscopy experts to design tiered evaluation benchmarks, iterating on prompts, retrieval quality (corpus hygiene, chunking strategy), and model outputs under GPU constraints using LangChain.”

Deep LearningClusteringComputer VisionXGBoostFeature EngineeringObject Detection+70
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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.”

BigQueryCI/CDCC++Computer VisionContainerization+108
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AR

Amy Russ

Screened

Director-level Applied Science & AI/ML leader specializing in LLMs, RAG, and MLOps

Atlanta, GA9y exp
HertzUniversity of Tennessee, Knoxville

“Active in the venture ecosystem as a Rogue Women's Fund fellow and angel investor, with memberships in Gaingels and Angel Squad (HustleFund). Interested in founding a company to leverage extensive experience, and evaluates ideas through market need and economic viability of the target population.”

A/B TestingAgileAPI DesignAWSCI/CDDatabricks+83
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PK

priya kotha

Screened

Mid-level Data Engineer specializing in real-time pipelines across FinTech and Healthcare

USA, USA4y exp
PlaidSacred Heart University

“Data engineer at Plaid who built greenfield, end-to-end real-time transaction pipelines and FastAPI data services for fraud detection and analytics, handling millions of events per day. Strong focus on reliability and data integrity via Great Expectations validation, Airflow-based monitoring/SLAs, quarantine/staging patterns, and robust external data ingestion with schema versioning and backfills (reported 50% fewer anomalies and ~40% fewer failures).”

PythonSQLPandasNumPyApache SparkPySpark+97
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MF

Matthew Frank

Screened

Senior Machine Learning Engineer specializing in computer vision and LLM-powered analytics

Santa Barbara, CA7y exp
Live Data TechnologiesUC Berkeley

“Machine learning engineer and startup veteran building InfraSketch (infrasketch.net), a full-stack system-design/diagramming product where users describe systems in plain English and an LLM agent generates and iterates on infrastructure graphs and exports design docs. Owns the entire stack (React/TS + FastAPI/Node, DynamoDB/Postgres, AWS serverless) and focuses on LLM consistency, modular agent architecture, and production-style CI/CD and reliability patterns.”

API IntegrationAWSCI/CDComputer VisionFeature EngineeringLangGraph+76
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SB

Sayak Banerjee

Screened

Intern Machine Learning Engineer specializing in LLMs, RAG, and search systems

Schaumburg, IL2y exp
PaylocityCarnegie Mellon University

“Built and shipped production improvements to a Paylocity RAG-based AI assistant, redesigning retrieval into a hybrid HNSW + keyword pipeline and using tuned RRF to fuse rankings—cutting latency by ~2s and reducing token usage by ~5000. Previously spearheaded Apache Airflow integration across ETL pipelines at Acuity Knowledge Partners, creating reusable templates and automated triggers to reduce manual job monitoring.”

PythonC++PySparkSQLFAISSSnowflake+100
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SK

Sai Kiran

Mid-level Full-Stack Python Engineer specializing in cloud-native payments and data pipelines

New York, NY6y exp
StripeUniversity of Central Missouri
PythonJavaTypeScriptJavaScriptC++SQL+153
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SP

Sunithya Penumarthy

Mid-level Machine Learning Engineer specializing in MLOps, computer vision, and generative AI

Texas, USA4y exp
TeslaUniversity of Utah
PythonNumPyPandasScikit-learnTensorFlowPyTorch+80
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SR

Sailesh Reddy Sirigireddy

Mid-level Software Engineer specializing in cloud and full-stack web development

Austin, TX5y exp
AmazonUniversity at Buffalo
AgileAlgorithmsAmazon EC2Amazon RDSAmazon S3Angular+81
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GS

Gautam Sanka

Senior Python AI/ML Engineer specializing in MLOps, data engineering, and LLM applications

Austin, TX12y exp
Elevance HealthUniversity of Texas at Austin
PythonSQLShell ScriptingJavaJavaScriptReact+157
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SB

Shivam Bakshi

Mid-level QA Engineer and Full-Stack Developer specializing in Apple platforms and ML

Lynnwood, WA5y exp
AppleUniversity of Washington
JavaPythonC++SQLJavaScriptNode.js+85
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MS

Madhu Sudhan Reddy Konda

Mid-Level Software Engineer specializing in backend, distributed systems, and AI/ML platforms

Atlanta, GA5y exp
Georgia State UniversityGeorgia State University
TypeScriptGoPythonJavaJavaScriptC#+117
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SP

Sathvika Priya Chan

Junior GenAI/ML Engineer specializing in LLM agents and production NLP systems

3y exp
Kaiser PermanenteUniversity of Central Missouri
A/B TestingAutomated TestingAWS LambdaAzure Machine LearningDecision TreesEmbeddings+85
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AN

Anuj Naik

Mid-level AI/ML Engineer specializing in production ML, LLMs, and MLOps

Remote, USA4y exp
StripeCalifornia State University
Amazon EC2Amazon S3AWSAnomaly DetectionAPI DevelopmentCI/CD+67
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