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Python Pandas Jobs in Tampa, FL (NOW HIRING)

Advanced proficiency in Python and common ML/data libraries such as scikit-learn, TensorFlow, Keras, PyTorch, Pandas, and NumPy for building, training, and evaluating models * Strong working ...

Principal AI Engineer - Vice President

Tampa, FL · On-site

$125.60 - $188.40/hr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

  • PTO

Strong proficiency in Python and libraries such as Pandas, NumPy, scikit‑learn, PyTorch, TensorFlow, Transformers, FastAPI, LangChain, LlamaIndex. * Hands‑on experience with vector databases:

AI & Machine Learning Engineer

Saint Petersburg, FL · On-site

$105K - $127K/yr

Advanced proficiency in Python and common ML/data libraries such as scikit-learn, TensorFlow, Keras, PyTorch, Pandas, and NumPy for building, training, and evaluating models * Strong working ...

Showing results 41-50

Python Pandas information

See Tampa, FL salary details

$12

$53

$78

How much do python pandas jobs pay per hour?

As of Aug 16, 2026, the average hourly pay for python pandas in Tampa, FL is $53.35, according to ZipRecruiter salary data. Most workers in this role earn between $43.99 and $60.58 per hour, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive in the Python Pandas position, and why are they important?

To thrive in a Python Pandas role, you need strong expertise in Python programming, data manipulation, and analysis, often supported by a degree in computer science, mathematics, or a related field. Familiarity with tools like Jupyter Notebook, SQL databases, and data visualization libraries, as well as certifications in data analytics or Python, are common. Excellent problem-solving skills, attention to detail, and the ability to communicate findings clearly make candidates stand out. These skills ensure you can efficiently handle complex datasets, derive actionable insights, and effectively collaborate with data teams.

What is a Python Pandas job?

A Python Pandas job involves working with the Pandas library to manipulate, analyze, and visualize data efficiently. Professionals in these roles typically clean and preprocess datasets, perform exploratory data analysis (EDA), and generate insights for decision-making. They are commonly found in data science, analytics, and engineering fields, often working with big data, automation, or business intelligence tools. Strong knowledge of Python, SQL, and data visualization libraries like Matplotlib or Seaborn may also be required.

What are the main responsibilities for professionals working with Python Pandas in a data-driven role?

Professionals specializing in Python Pandas are typically responsible for cleaning, transforming, and analyzing large datasets to support business decisions. They collaborate closely with data scientists, analysts, and stakeholders to create data models, generate reports, and provide insights that guide strategy. Daily tasks may include scripting data pipelines, troubleshooting data issues, and presenting findings in an accessible format. This role often provides opportunities for growth into senior analyst, data engineering, or data science positions, especially as you gain experience in advanced analytics or machine learning applications.

What are the most commonly searched types of Python Pandas jobs in Tampa, FL?

The most popular types of Python Pandas jobs in Tampa, FL are:

Infographic showing various Python Pandas job openings in Tampa, FL as of August 2026, with employment types broken down into 2% Internship, 84% Full Time, 7% Part Time, and 7% Contract. Highlights an 78% Physical, 6% Hybrid, and 16% Remote job distribution, with an average salary of $110,965 per year, or $53.3 per hour.

AI & Machine Lrng Engr

OneBlood

Saint Petersburg, FL • On-site

Full-time

Posted 27 days ago


OneBlood rating

6.6

Company rating: 6.6 out of 10

Based on 56 frontline employees who took The Breakroom Quiz

569th of 887 rated healthcare providers


Job description

Overview
Oversees the coding, pipeline development, execution, and delivery of Artificial Intelligence (AI) and Machine Learning (ML) projects across the organization. Works with cross-functional teams and leverages advanced analytics, applied statistics, AI and ML techniques to drive business insights and optimize operations.
Responsibilities
The list of essential functions, as outlined herein, is intended to be representative of the duties and responsibilities performed within this classification. It is not necessarily descriptive of any one position in the class. The omission of an essential function does not preclude management from assigning duties not listed herein if such functions are a logical assignment to the position.
  • Designs, builds, and maintains robust data pipelines to collect, clean, and transform data from various sources used in analysis, modeling, and deployed operational environments
  • Develops and implements ML models and algorithms to solve complex business problems and improve decision-making processes across the full life cycle, including problem framing, data collection, data preparation, feature engineering, model selection, training, evaluation, deployment, retraining, and advancement
  • Designs and builds AI agents that execute in workflows within enterprise systems (databases, CRMs, ticketing, knowledge bases) and that are deployed with reliable/safety guardrails
  • Implements end-to-end agent orchestration (prompting, memory/state, tool-calling, retries/fallbacks) and develops evaluation frameworks (test suites, simulations, human-in-the-loop review) to improve accuracy and reduce error
  • Designs, builds, and maintains Retrieval-Augmented Generation (RAG) GPT applications by integrating enterprise knowledge sources (documents/databases) with embeddings, vector search, and prompt orchestration to deliver accurate, grounded responses with evaluation and safety guardrails
  • Analyzes large datasets to uncover trends, patterns, and insights, and creates visualizations and reports to communicate findings to stakeholders
  • Monitors and evaluates the performance of data models and systems, and makes necessary adjustments to optimize accuracy and efficiency
  • Documents processes, methodologies, and model development to ensure transparency and reproducibility
  • Provides training and support to other team members or departments on data tools, techniques, and best practices
  • Consults with internal IT teams to ensure infrastructure supports stable, well-designed, highly available, and well-maintained Data Science and AI applications
  • Stays current with emerging technologies and industry trends to continuously improve data engineering practices and contributes to the development of cutting-edge solutions
  • Ensures the accuracy, consistency, and security of data; implements and enforces data governance policies and best practices.

Qualifications
To perform this job successfully, an individual must be able to perform each essential duty and responsibility satisfactorily. The requirements listed below are representative of the knowledge, skill, and/or ability required.
EDUCATION AND/OR EXPERIENCE:
Bachelor's degree in Computer Science, Analytics, or related field from an accredited college or university. Masters of Science degree preferred. Five (5) or more years of experience in data engineering, data science, or a related role, with hands-on experience in building and deploying machine learning models.
CERTIFICATES, LICENSES, REGISTRATIONS AND DESIGNATIONS:
None
KNOWLEDGE, SKILLS AND ABILITIES:
  • Advanced proficiency in Python and common ML/data libraries such as scikit-learn, TensorFlow, Keras, PyTorch, Pandas, and NumPy for building, training, and evaluating models
  • Strong working knowledge of machine learning methodologies, including supervised learning (e.g., regression, classification) and unsupervised learning (e.g., clustering, dimensionality reduction, anomaly detection)
  • Strong SQL skills with experience designing and querying relational databases and supporting data warehousing solutions; familiarity with ETL/ELT workflows and tools (e.g., SSIS or equivalent)
  • Working knowledge of medallion architectures
  • Skilled in cloud-based ML development and deployment on platforms such as AWS, Azure, or Google Cloud
  • Proficiency with version control and collaborative development workflows, including Git, branching strategies, code review, and basic CI/CD concepts
  • Expertise in probability and statistics, including experimental design and hypothesis testing, modeling uncertainty, performance measurement, and selecting appropriate evaluation metrics
  • Experience building AI model-powered applications and workflows using model APIs, including prompt design, tool/function calling, structured outputs (JSON), and response validation/guardrails
  • Strong understanding of RAG architectures, including document ingestion pipelines, chunking strategies, metadata design, embedding generation, and retrieval methods
  • Hands-on experience with vector databases/search systems and tuning retrieval for relevance, latency, and cost.

PHYSICAL REQUIREMENTS:
The work environment characteristics described here are representative of those an employee encounters while performing the essential functions of this job.
Functions involve the periodic performance of moderately physically demanding work, usually involving lifting, carrying, pushing and/or pulling of moderately heavy objects and materials (up to 25 pounds). Tasks that require moving objects of significant weight require the assistance of another person and/or use of proper techniques and
moving equipment. Tasks may involve some climbing, stooping, kneeling, crouching, or crawling. Must be able to safely operate assigned vehicles possibly long distances.
ENVIRONMENTAL REQUIREMENTS:
The work environment characteristics described here are representative of those an employee may encounter while performing the essential functions of this job.
Functions are regularly performed inside and/or outside with potential for exposure to adverse conditions, such as inclement weather, atmospheric elements and pathogenic substances. The noise level in the work environment is usually moderate.

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