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Vetted Machine Learning Engineers in Michigan

Pre-screened and vetted in Michigan.

PythonDockerAmazon SageMakerApache AirflowCI/CDNatural Language Processing
AS

Abhishek Savaliya

Junior Python Developer specializing in ML/NLP and cloud deployment

Troy, MI2y exp
DatabricksCleveland State University
PythonSQLJavaMachine LearningNatural Language Processing (NLP)scikit-learn+92
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KA

Kartikeya Anand

Screened

Mid-level Machine Learning Engineer specializing in NLP, LLMs, and multimodal modeling

Ann Arbor, USA3y exp
University of MichiganUniversity of Michigan

Built and productionized a telecom-focused RAG assistant by LoRA fine-tuning LLaMA-2 and integrating LangChain+FAISS behind a FastAPI service, with dashboards and a human feedback UI for engineers. Demonstrated measurable impact (≈40% faster document lookup, +8–10% retrieval precision) and strong MLOps rigor via Airflow orchestration, CI/CD, and monitoring for drift and failures.

AirflowAnomaly DetectionAWSAWS EC2BERTCI/CD+111
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NG

Niteesh Ganipisetty

Screened

Mid-level AI/ML Engineer specializing in Generative AI, NLP, and Computer Vision

Grand Rapids, MI4y exp
IntuitGrand Valley State University

Built an LLM-powered learning assistant (EduQuizPro/EduCrest Pro) that uses RAG over URLs and PDFs to generate quizzes, notes, and explanations for students/professors. Emphasizes production robustness—implemented dependency fallbacks (FAISS/Sentence Transformers/Gradio), CLI-safe mode, and NumPy-based indexing—along with a custom orchestration layer to keep multi-step AI workflows reliable.

A/B TestingAgileAirflowApache HadoopApache HiveApache Kafka+112
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RK

Ram Kottala

Screened

Mid-level Data & GenAI Engineer specializing in lakehouse, streaming, and RAG platforms

Michigan, USA5y exp
FordWebster University

Built a production internal LLM-powered knowledge assistant using a RAG architecture (Python, LLM APIs, cloud services) that answers employee questions with sourced, grounded responses from internal documents. Demonstrates strong practical depth in retrieval tuning (chunking/metadata filters), orchestration with LangChain, and production reliability practices (latency optimization, automated embedding refresh, evaluation metrics, logging/monitoring) while partnering closely with non-technical operations teams.

PythonPySparkScalaJavaRSQL+173
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AC

Aditya Chintala

Mid-level AI/ML Engineer specializing in healthcare and financial services

Detroit, MI3y exp
Rocket MortgageTexas Tech University
PythonRJavaTensorFlowPyTorchScikit-learn+70
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VV

Vijay Vignesh Vijay Vignesh

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and computer vision

Zeeland, MI6y exp
GentexAnna University
AIAlgorithmsAmazon SageMakerAmbarella SoCAsynchronous DeploymentAUROC+68
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VR

Vamsi Reddy

Mid-level AI/ML Engineer specializing in cloud MLOps and scalable model deployment

Detroit, MI6y exp
Ally BankIndiana Wesleyan University
PythonJavaSQLBashPowerShellTensorFlow+77
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SR

SREEJA REDDY Konda

Screened

Mid-level AI/ML Engineer specializing in NLP, MLOps, and predictive analytics

Kentwood, MI6y exp
Fifth Third BankUniversity of Central Missouri

AI/ML Engineer at Fifth Third Bank who has shipped production fraud detection and risk analysis systems combining ML models with LLM-powered insights/explanations, including real-time monitoring, drift detection, and automated retraining under regulatory explainability constraints. Also built a hybrid-retrieval internal knowledge-base QA system (+20% top-5 relevance) and delivered a customer support chatbot that reduced first response time by 30% through strong stakeholder collaboration.

PythonSQLRJavaScalaScikit-learn+102
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SD

Sachin Dulla

Screened

Mid-level AI/ML Engineer specializing in NLP, fraud detection, and MLOps

Kentwood, MI3y exp
Fifth Third BankCalifornia State University, San Bernardino

Built and deployed a domain-specific LLM chatbot for research/support, cutting manual effort by ~50%. Demonstrates strong applied LLM engineering: RAG, prompt grounding with citations and fallbacks, embedding/top-k tuning, and production monitoring (confidence, latency, feedback loops). Experienced orchestrating agent workflows with LangChain-style pipelines and continuous evaluation to maintain reliability.

AirflowAmazon EC2Amazon EKSAWSAWS LambdaAWS SageMaker+93
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KA

Krishna Ailuri

Mid-level Machine Learning Engineer specializing in NLP and recommender systems

MI, USA4y exp
McKessonCentral Michigan University
A/B TestingAirflowANN IndexingARIMAAWSAWS EC2+101
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TR

Tharuni Reddy Polu

Mid-level AI/ML Engineer specializing in healthcare GenAI and MLOps

Southfield, MI6y exp
Corewell HealthCentral Michigan University
AI Systems DesignAgentic AIAnomaly DetectionApache AirflowApache KafkaApache Spark+108
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TB

Tharunteja B

Mid-level GenAI/MLOps Engineer specializing in banking and healthcare LLM applications

Kentwood, MI5y exp
Fifth Third BankSaint Louis University
AgileAgile/ScrumAPI GatewayAPI SecurityAudit-Safe Data MaskingAWS+104
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NN

Naveen Nani

Mid-level AI/ML Engineer specializing in Generative AI, NLP, and MLOps

Inkster, MI4y exp
State StreetTrine University
PythonSQLPostgreSQLMySQLRSAS+133
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SG

Sravani Gangaraju

Screened

Mid-level AI/ML Engineer specializing in NLP, computer vision, and recommender systems

Michigan, United States4y exp
Piper SandlerLawrence Technological University

Built and deployed a production NLP sentiment analysis system at Piper Sandler to turn noisy, finance-specific customer feedback into scalable insights. Demonstrates strong end-to-end MLOps: fine-tuning BERT, improving label quality, monitoring for language drift, and automating retraining/deployment with Airflow and Docker (plus Kubeflow exposure).

A/B TestingAgile MethodologiesAirflowApache HadoopApache HiveApache Kafka+113
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LS

Lakshmi Swathi Sreedhar

Screened

Mid-level AI Engineer specializing in Generative AI and LLM systems

Grand Ledge, MI3y exp
ChainSysUniversity of Michigan-Dearborn

Built and deployed a production-grade, multi-agent Text-to-SQL assistant that lets non-technical stakeholders query large enterprise databases in natural language. Uses Pinecone-based schema retrieval + LLM reasoning (Gemini/Claude/GPT) with a dedicated validation agent (schema/syntax checks and safe dry runs) to reduce hallucinations and improve reliability, while optimizing latency and cost via async execution and embedding caching.

A/B TestingAgileAPI IntegrationApache AirflowAWS SageMakerAzure+172
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AA

Alejandro Alemany

Screened

Senior Full-Stack AI/ML Engineer specializing in MLOps and GenAI

Belmont, Michigan10y exp
AvaSureCapitol Technology University

Senior backend/data engineer who has built and maintained HIPAA-compliant, real-time clinical FastAPI services on AWS, orchestrating ML/LLM and vector DB calls with strong reliability patterns (auth, timeouts/retries, graceful degradation, idempotency). Also delivered AWS IaC/CI-CD (Terraform/Helm/GitHub Actions) across EKS/Lambda/SageMaker and built Glue/Spark ETL with schema evolution and data quality controls, plus demonstrated large SQL performance wins (15 min to <9 sec) and hands-on incident ownership.

AIAI PlatformAlerting SystemsAngularAPI DesignAPI Gateways+197
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SB

Srujan Bommena

Junior Machine Learning Engineer specializing in healthcare and IT analytics

Detroit, MI3y exp
HarmonecareUniversity of West Florida
PythonRSQLBashMachine LearningScikit-learn+77
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