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Smith & Associates

AI/ML Engineer

On site

Houston, United states

Fresher

Full Time

29-01-2026

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Skills

Communication Python SQL NoSQL Data Engineering CI/CD Version Control Research PyTorch Scikit-Learn TensorFlow Regression Databases git AWS Numpy Pandas Flask FastAPI Data Science NLP

Job Specifications

In this role, you will contribute to building and shipping AI features end-to-end: data prep, modeling, evaluation, deployment, and iteration. Additionally, collaborate with the engineering team to translate ideas and research into reliable, production-grade systems.

What You’ll Do

Build LLM-powered features (prompt design, RAG pipelines, tools/plug-ins, evaluations, guardrails).
Experiment with agentic AI patterns (tool use, planning/re-planning, multi-agent workflows) and ship reliable agents.
Implement and evaluate machine-learning models (classification, regression, clustering, NLP, CV) from prototype to production.
Write clean, well-tested Python code for data processing, modeling, and service APIs.
Package and deploy models/services on AWS (e.g., S3, Lambda, ECS/EKS, SageMaker) with basic CI/CD.
Design simple, efficient data pipelines and integrate with databases (SQL/NoSQL) and vector stores.
Monitor models in production (latency, drift, quality) and iterate based on telemetry and user feedback.
Read papers/blogs/specs and quickly translate ideas into working prototypes.

What You’ll Bring

Strong foundation in algorithms and data structures; able to analyze time/space complexity and choose the right approach.
Solid understanding of core ML principles: bias/variance, feature engineering, cross-validation, regularization, evaluation metrics.
Familiarity with LLMs: tokenization basics, model families, fine-tuning concepts, RAG patterns, and LLM evaluations.
Exposure to agentic AI concepts: tool calling, planning, memory, and simple multi-agent orchestration.
Knowledge of Model Context Protocol (MCP) for context sharing, secure integrations, and tool orchestration.
Proficiency in Python and common libraries (NumPy, pandas, scikit-learn; plus, PyTorch or TensorFlow preferred).
Comfort with AWS fundamentals (IAM, S3, compute/container runtimes) or equivalent cloud experience.
Experience with databases: writing efficient SQL, understanding normalization/indices; basic NoSQL (e.g., DynamoDB) awareness.
Familiarity with vector databases (e.g., FAISS, Pinecone, Milvus) is a plus.
Version control (Git) and basic software craftsmanship (testing, linting, code reviews).

Nice to have

Data engineering basics: Airflow/Prefect, message queues, data validation.
API development (FastAPI/Flask) and simple observability (logs/metrics/traces).
Security, privacy, and responsible-AI awareness (PII handling, prompt injection basics, red-teaming mindset).
Math comfort: linear algebra, probability, calculus.

How You Work

Strong ability to adapt to new technologies and rapidly learn by reading docs/papers and implementing new ideas.
Bias for action: iterate quickly, measure results, and improve based on evidence.
Clear communication and collaborative mindset; comfortable receiving and giving feedback.

Qualifications

Bachelor’s or master's in computer science, Data Science, EE, or related field (or equivalent projects/internships).
0–2 years of professional experience; internships, open-source, or notable personal projects count.

Smith is an equal opportunity employer

VEVIRAA Federal Contractor

We are an Equal Opportunity/Affirmative Action Employer.

About the Company

Founded in 1984, Smith is the leading independent distributor of electronic components. Smith’s Intelligent Distribution™ model offers a comprehensive suite of flexible and scalable supply chain solutions to source, manage, test, and ship billions of components to partners worldwide in every industry and vertical. The company is backed by more than 25 certifications and accreditations and has developed and implemented sustainable practices that exceed industry and regulatory requirements. Building on its decades of market da... Know more