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Artificial Intelligence And Machine Learning Jobs in Conroe, TX

Patent Agent

Houston, TX · On-site

$140 - $240/hr

Preferred experience includes patent prosecution in Artificial Intelligence , Machine Learning , 5G-Telecom , Robotics and Semiconductor Manufacturing and Packaging, and Signal Processing. This ...

Posted today

Lead Machine Learning Engineer

Houston, TX · On-site +1

$97K - $128K/yr

... and that artificial intelligence is essential to unlock this potential. NobleAI leverages ... As a Lead Machine Learning Engineer specializing in conversational and agentic systems at NobleAI ...

Lead Machine Learning Engineer

Houston, TX · On-site +1

$97K - $128K/yr

... and that artificial intelligence is essential to unlock this potential. NobleAI leverages ... As a Lead Machine Learning Engineer specializing in conversational and agentic systems at NobleAI ...

Lead Machine Learning Engineer

Houston, TX · Remote

$104K - $138K/yr

... and that artificial intelligence is essential to unlock this potential. NobleAI leverages ... As a Lead Machine Learning Engineer specializing in conversational and agentic systems at NobleAI ...

Define and enforce governance, security, compliance, and architecture standards for artificial intelligence and machine learning initiatives * Identify high-value AI use cases and guide teams on ...

Cyber Manager - AI SOC

Houston, TX

$106K - $143K/yr

Experience applying artificial intelligence, machine learning, or large language model workflows to security operations, including orchestration, retrieval, evaluation, or human-in-the-loop response ...

Showing results 21-40

Artificial Intelligence And Machine Learning information

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How much do artificial intelligence and machine learning jobs pay per hour?

As of Aug 23, 2026, the average hourly pay for artificial intelligence and machine learning in Conroe, TX is $22.56, according to ZipRecruiter salary data. Most workers in this role earn between $18.32 and $23.89 per hour, depending on experience, location, and employer.

What is artificial intelligence and machine learning?

Artificial Intelligence (AI) refers to the development of computer systems that can perform tasks typically requiring human intelligence, such as reasoning, problem-solving, and understanding language. Machine Learning (ML) is a subset of AI that focuses on creating algorithms and statistical models that enable computers to learn from data and improve their performance over time without being explicitly programmed. Together, AI and ML are used in a wide range of applications, from virtual assistants and recommendation systems to autonomous vehicles and medical diagnosis. These technologies are rapidly evolving and have a significant impact across many industries.

What are the key skills and qualifications needed to thrive as an artificial intelligence and machine learning engineer?

To thrive as an AI/ML Engineer, you need strong skills in mathematics, statistics, programming (Python, R), and a solid understanding of machine learning algorithms, typically supported by a degree in computer science or a related field. Familiarity with frameworks such as TensorFlow, PyTorch, and tools like scikit-learn, as well as experience with cloud platforms and relevant certifications, is highly valuable. Critical thinking, creativity, and effective communication help in solving complex problems and collaborating across interdisciplinary teams. These skills are crucial for developing robust AI solutions that drive innovation and deliver tangible business value.

What are some common challenges faced by professionals working in artificial intelligence and machine learning roles?

Professionals in AI and Machine Learning often encounter challenges such as managing large datasets, ensuring data quality, and selecting the most appropriate algorithms for specific problems. Additionally, they must stay up-to-date with rapidly evolving technologies and frameworks, which requires continuous learning. Collaborating with cross-functional teams, such as data engineers and domain experts, is vital for translating business needs into effective AI solutions. Balancing project deadlines with the experimentation and iteration needed for model development can also be demanding.

Is artificial intelligence and machine learning a good career?

Artificial Intelligence and Machine Learning are rapidly growing fields with high demand for skilled professionals, offering competitive salaries and diverse opportunities across industries. Success typically requires strong programming skills, knowledge of algorithms, and experience with tools like Python and TensorFlow. It is considered a promising career path for those interested in technology and data analysis.

What jobs can I get with artificial intelligence and machine learning?

Jobs in artificial intelligence and machine learning include roles such as AI engineer, machine learning engineer, data scientist, research scientist, and AI software developer. These positions typically require skills in programming languages like Python or R, knowledge of algorithms, and experience with tools like TensorFlow or PyTorch. They are found across industries including technology, healthcare, finance, and automotive sectors.

What are popular job titles related to Artificial Intelligence And Machine Learning jobs in Conroe, TX?

For Artificial Intelligence And Machine Learning jobs in Conroe, TX, the most frequently searched job titles are:

What job categories do people searching Artificial Intelligence And Machine Learning jobs in Conroe, TX look for?

The top searched job categories for Artificial Intelligence And Machine Learning jobs in Conroe, TX are:

What cities near Conroe, TX are hiring for Artificial Intelligence And Machine Learning jobs?

Cities near Conroe, TX with the most Artificial Intelligence And Machine Learning job openings:

Infographic showing various Artificial Intelligence And Machine Learning job openings in Conroe, TX as of August 2026, with employment types broken down into 1% As Needed, 73% Full Time, 21% Part Time, and 5% Contract. Highlights an 87% Physical, 2% Hybrid, and 11% Remote job distribution, with an average salary of $46,919 per year, or $22.6 per hour.

Postdoctoral Researcher - Explainable AI for 3D Data

ExxonMobil

Spring, TX

$106K/yr

Full-time

Medical, Life

Re-posted 7 days ago


ExxonMobil rating

6.0

Company rating: 6.0 out of 10

Based on 230 frontline employees who took The Breakroom Quiz

72nd of 87 rated oil and gas companies


Job description

About us

At ExxonMobil, our vision is to lead in energy innovations that advance modern living while reducing emissions. As one of the world's largest publicly traded energy and chemical companies, we are powered by a unique and diverse workforce fueled by the pride in what we do and what we stand for.

The success of our Upstream, Product Solutions and Low Carbon Solutions businesses is the result of the talent, curiosity and drive of our people. They bring solutions every day to optimize our strategy in energy, chemicals, lubricants and lower-emissions technologies. 

We invite you to bring your ideas to ExxonMobil to help create sustainable solutions that improve quality of life and meet society's evolving needs. Learn more about our What and our Why and how we can work together.

Why Join ExxonMobil?

At ExxonMobil, we apply advanced optimization and machine learning techniques to solve some of the most challenging problems in energy, manufacturing, and low-carbon technologies. In this role, you will work on cutting-edge methods at the intersection of OR and AI, directly impacting critical business decisions and shaping next-generation computational decision-support capabilities.

About the Role

ExxonMobil is seeking a highly motivated Postdoctoral Researcher specializing in Explainable Artificial Intelligence (XAI) for large-scale 3D data analysis. The successful candidate will develop interpretable machine learning methods for segmentation, classification, and anomaly detection in high-dimensional volumetric datasets to support critical business and engineering decisions.

This role is ideal for a recent Ph.D. graduate with expertise in XAI and deep learning applied to complex spatial data. The candidate will work closely with domain experts to create transparent, trustworthy AI systems that provide actionable insights for high-stakes applications.

Key Responsibilities

Key Responsibilities

  • Develop explainable AI methods for deep learning models applied to 3D volumetric data.
  • Design and implement models for segmentation, classification, and anomaly detection in large-scale datasets.
  • Create techniques to improve model interpretability, transparency, and trustworthiness, including post hoc explanation and inherently interpretable approaches.
  • Develop uncertainty-aware predictions to support decision-making in critical applications.
  • Optimize models for scalability and performance on large 3D datasets.
  • Evaluate models using both predictive accuracy and explainability metrics relevant to domain needs.
  • Collaborate with domain experts to translate model outputs into decision-support tools.
  • Implement workflows using modern ML frameworks and reproducible software practices.
  • Communicate findings through technical reports, journal publications, and conference presentations.
Example Research & Application Areas
  • Explainable AI methods for deep neural networks
  • 3D computer vision and volumetric data analysis
  • Semantic and instance segmentation in large 3D volumes
  • Anomaly detection in high-dimensional spatial data
  • Interpretable representations for classification models
  • Uncertainty quantification and confidence estimation in AI models
  • Human-in-the-loop AI and decision-support systems
  • Applications to subsurface imaging, industrial inspection, and sensor data
Required Qualifications
  • Ph.D. in Computer Science, Artificial Intelligence, Machine Learning, Computational Science, or a closely related field, with a focus on explainable AI or interpretable machine learning.
  • Demonstrated research experience in explainable AI and deep learning, including one or more of:
      • Model interpretability (e.g., saliency methods, attribution, feature importance)
      • Explainability techniques for neural networks
      • Interpretable model design
  • Experience with 3D data (e.g., volumetric imaging, point clouds, or spatiotemporal data) and deep learning methods such as CNNs, transformers, or graph neural networks.
  • Proven experience in segmentation, classification, or anomaly detection tasks.
  • Strong programming skills in Python.
  • Hands-on experience with machine learning frameworks such as PyTorch or TensorFlow.
  • Strong analytical, problem-solving, and communication skills.
  • Ability to work effectively in multidisciplinary teams.
Preferred Qualifications
  • Experience with XAI methods for computer vision or 3D data.
  • Familiarity with uncertainty quantification, probabilistic ML, or Bayesian deep learning.
  • Experience with large-scale data processing and GPU-accelerated training.
  • Knowledge of evaluation metrics for explainability and model trustworthiness.
  • Experience applying AI to engineering, geospatial, industrial, or scientific datasets.
  • Strong publication record in XAI, machine learning, or computer vision.
  • Demonstrated ability to translate research into decision-support applications.
Desired Attributes
  • Passion for developing trustworthy and interpretable AI systems.
  • Interest in solving high-impact, real-world problems involving complex data.
  • Ability to bridge machine learning methods with practical decision-making needs.
  • Collaborative mindset and strong communication skills.
  • Self-driven with the ability to independently lead research initiatives.
Duration

This opportunity is for a postdoctoral position expected to last one to three years, subject to annual review and renewal.

Work Location

This post doctoral research position will be located at our main corporate office in Spring, Texas.

Your Total Rewards

An ExxonMobil career is one designed to last. Our commitment to you runs deep: our employees grow personally and professionally, with benefits built on our core categories of health, security, finance, and life. Individual pay is determined based on various factors including degree/education, discipline, year of study, skills, abilities, qualifications, and work experience. 


More information on our Company's benefits can be found at www.exxonmobilfamily.com.


Please note pay rates and benefits may be changed from time to time without notice, subject to applicable law.

Relocation Options

Relocation benefits may be available to you based on ExxonMobil eligibility guidelines. 

Equal Opportunity Employer

ExxonMobil is an Equal Opportunity Employer.  All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, age, sexual orientation, gender identity, national origin, citizenship status, protected veteran status, genetic information, or physical or mental disability.

Nothing herein is intended to override the corporate separateness of local entities. Working relationships discussed herein do not necessarily represent a reporting connection, but may reflect a functional guidance, stewardship, or service relationship. 

Exxon Mobil Corporation has numerous affiliates, many with names that include ExxonMobil, Exxon, Esso and Mobil. For convenience and simplicity, those terms and terms like corporation, company, our, we and its are sometimes used as abbreviated references to specific affiliates or affiliate groups. Abbreviated references describing global or regional operational organizations and global or regional business lines are also sometimes used for convenience and simplicity. Similarly, ExxonMobil has business relationships with thousands of customers, suppliers, governments, and others. For convenience and simplicity, words like venture, joint venture, partnership, co-venturer, and partner are used to indicate business relationships involving common activities and interests, and those words may not indicate precise legal relationships.


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