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Biomedical Tissue Engineering Jobs in Texas (NOW HIRING)

Mouse Research Assistant II

Houston, TX · On-site

$27.16 - $32.69/hr

Experience working with genetically engineered mouse models of cancer, tumor implantation models ... Prior tissue culture experience is a plus. The University of Texas MD Anderson Cancer Center offers ...

Experience working with genetically engineered mouse models of cancer, tumor implantation models ... Prior tissue culture experience is a plus. The University of Texas MD Anderson Cancer Center offers ...

Mouse Research Assistant II

Houston, TX · On-site

$27.16 - $32.69/hr

Experience working with genetically engineered mouse models of cancer, tumor implantation models ... Prior tissue culture experience is a plus. The University of Texas MD Anderson Cancer Center offers ...

Experience working with genetically engineered mouse models of cancer, tumor implantation models ... Prior tissue culture experience is a plus. The University of Texas MD Anderson Cancer Center offers ...

Manage tissue specimen procurement, tracking, storage, and disposition while ensuring compliance ... Associate's degree in Biology, Anatomy, Kinesiology, Biomedical Engineering, or a related field, or ...

Manage tissue specimen procurement, tracking, storage, and disposition while ensuring compliance ... Associate's degree in Biology, Anatomy, Kinesiology, Biomedical Engineering, or a related field, or ...

... Biomedical Engineering, Materials Science, or a related field with a focus on AFM or scanning probe microscopy. * Proven experience in AFM measurements of biological samples, tissue/cell ...

Showing results 41-60

Biomedical Tissue Engineering information

See Texas salary details

$38.2K

$88.3K

$130.4K

How much do biomedical tissue engineering jobs pay per year?

As of Aug 8, 2026, the average yearly pay for biomedical tissue engineering in Texas is $88,327.00, according to ZipRecruiter salary data. Most workers in this role earn between $69,400.00 and $108,100.00 per year, depending on experience, location, and employer.

What can you do with biomedical tissue engineering?

Biomedical tissue engineering professionals develop artificial tissues and organs for medical applications, such as regenerative therapies, transplantation, and disease modeling. They work with biomaterials, cell cultures, and bioreactors, often requiring knowledge of biology, materials science, and laboratory techniques. Careers can include research, product development, and clinical implementation in healthcare settings.

What is biomedical tissue engineering?

Biomedical tissue engineering is a field of science and engineering focused on developing biological substitutes to restore, maintain, or improve the function of damaged tissues or organs. It combines principles from biology, engineering, materials science, and medicine to create scaffolds, cells, and biologically active molecules. These engineered tissues can be used for research, drug testing, or transplantation. The goal is to provide alternatives to traditional organ transplants and help address the shortage of donor tissues.

What is the difference between Biomedical Tissue Engineering vs Biomedical Research Scientist?

AspectBiomedical Tissue EngineeringBiomedical Research Scientist
Required CredentialsDegree in biomedical engineering, tissue engineering, or related fieldsDegree in biology, biochemistry, or related sciences
Work EnvironmentLaboratories, research facilities, clinical settingsLaboratories, research institutions, hospitals
Employer & IndustryMedical device companies, biotech firms, research institutesUniversities, government agencies, biotech companies
Common Search & ComparisonFocus on developing tissue scaffolds, regenerative therapiesFocus on understanding biological processes, drug development

Biomedical Tissue Engineering primarily involves designing and developing biological tissues and regenerative solutions, often requiring engineering and biological expertise. In contrast, Biomedical Research Scientists focus on understanding biological mechanisms and developing new therapies through scientific research. While both roles work in biomedical settings, their core objectives and skill sets differ, making this comparison relevant for those exploring careers in biomedical sciences.

What are the key skills and qualifications needed to thrive as a biomedical tissue engineer, and why are they important?

To thrive as a Biomedical Tissue Engineer, you need a strong background in biology, biomaterials, and engineering principles, often supported by a degree in biomedical engineering or a related field. Familiarity with tissue culture techniques, CAD software, 3D bioprinting, and regulatory standards is commonly required. Strong problem-solving, collaboration, and communication skills help you excel in multidisciplinary teams and research environments. These competencies are crucial for developing innovative therapies and ensuring the safety and effectiveness of tissue-engineered products.

What are some common challenges faced by professionals in biomedical tissue engineering, and how can they be addressed?

Professionals in biomedical tissue engineering often encounter challenges such as ensuring the biocompatibility of materials, achieving successful integration of engineered tissues with host tissues, and managing complex multidisciplinary projects. Addressing these challenges typically involves close collaboration with biologists, clinicians, and materials scientists, as well as staying current with advances in biomaterials and regenerative medicine. Continuous learning, effective communication, and a problem-solving mindset are key to overcoming these hurdles and contributing to successful project outcomes.
What are popular job titles related to Biomedical Tissue Engineering jobs in Texas? For Biomedical Tissue Engineering jobs in Texas, the most frequently searched job titles are:
Infographic showing various Biomedical Tissue Engineering job openings in Texas as of August 2026, with employment types broken down into 68% Full Time, 11% Part Time, 16% Contract, and 5% Nights. Highlights an 89% In-person, and 11% Remote job distribution, with an average salary of $88,327 per year, or $42.5 per hour.

Postdoctoral Fellow - Translational Molecular Pathology

MD Anderson

Houston, TX

$46K - $63K/yr

Full-time

Re-posted 9 days ago


MD Anderson Cancer Center rating

8.4

Company rating: 8.4 out of 10

Based on 170 frontline employees who took The Breakroom Quiz

24th of 887 rated healthcare providers


Job description

Fully funded full-time postdoctoral fellow positions are available in Dr. Andrew H. Song's lab (opened in Jan. 2026) at the Department of Translational Molecular Pathology and the Institute for Data Science in Oncology, the University of Texas MD Anderson Cancer Center.
We are seeking highly talented and motivated computational postdoctoral fellows with a strong background in computer science, statistics, mathematics, and bioinformatics with a passion for solving critical healthcare problems at truly large scale. Fellows will be mentored under close guidance from a PI with a strong track record of publishing in top-tier journals (Cell, Nature Medicine, Nature Cancer, Nature Reviews Bioengineering) and ML conferences (ICML, CVPR, NeurIPS, MICCAI). This position offers an outstanding platform to grow your scientific independence, publish at the highest levels, and build a career making transformative impact in medicine. In addition, this is a great chance to help shape an emerging computational lab in one of the world's leading cancer centers.
Dr. Song's lab is dedicated to building next-generation AI tools for computational pathology, grounded in rigorous principles of statistical inference, with the overarching goal of deciphering multi-scale oncologic complexity and improving outcome prediction for cancer patients. The lab's research will focus on developing state-of-the-art foundation models and agentic AI frameworks capable of integrating diverse data modalities-including tissue images, spatial transcriptomics, spatial proteomics, and clinical reports-across multiple dimensions of clinical data (2D, 3D, and even 4D longitudinal datasets). By combining these innovations with advanced statistical approaches such as Bayesian inference, the lab aims to open new frontiers in computational pathology and precision oncology.
Based in the world's leading cancer center within the largest medical complex in the world (Texas Medical Center), the candidates will have direct access to one of the most comprehensive patient tissue and data repositories anywhere. In addition to the vibrant and rich cancer research ecosystem within TMC/Houston, the candidates will have exciting opportunities to collaborate extensively with external collaborators in academia (Harvard Medical School, Stanford, and numerous leading hospitals in Asia/Europe) as well as industrial partners to foster translational impact at scale. MD Anderson also provides a wealth of computational resources, including high-performance computing clusters tailored for biomedical research and on-demand access to the Texas Advanced Computing Center.
For more information, refer to Dr. Song's website at https://andrewhsong.com
All duties and responsibilities are carried out in compliance with institutional policies, ethical research standards, and applicable federal and state regulations.
LEARNING OBJECTIVES
Learn and master skills for in-depth profiling and distillation/fusion of heterogeneous multimodal high-dimensional data sources (tissue images and transcriptomics/proteomics/metabolomics data). Gain extensive experience on developing and applying state-of-the-art AI frameworks in vision/language/omics. In addition to these research skills, the candidate will be trained heavily on efficient and clear communication with collaborators in clinical settings, mentoring junior trainees, publishing high-impact articles, and writing grants for career development.
ELIGIBILITY REQUIREMENTS
Candidates with a Ph.D. in Computer Science, Electrical Engineering, Statistics, Mathematics, Biomedical data sciences or a related field are encouraged to apply.
1. Strong computational skills
- Proficient in python and pytorch with extensive experience of training/validating AI models (computer vision and LLM).
- Extensive experience in handling and analyzing tissue image data (H&E whole-slide images) and/or omics data (bulk-seq, spatial omics data)
- Experience in large-scale, high-performance GPU cluster training and job handling
- Experience with open-source codebases (Github, Hugging Face) and engagement with the developer community
2. Strong publication background
- Proven track record of journal publications (or submissions) and/or premier ML conferences
3. Strong communication, writing, and collaboration ability. Ability to conduct well-organized and reproducible research workflow is a must.
ADDITIONAL APPLICATION INFORMATION
In addition to submitting the application, please email the following to asong2@mdanderson.org
(1) Cover letter on the candidate's research interest, career goals, and how this can align with Dr. Song's new research lab direction.
(2) CV or Resume, with reference to Github/Hugging Face repository (if available).
(3) 2~3 representative publications, with concise description of the candidate's contribution to each piece
(4) Email address for three references.
POSITION INFORMATION
Offsite work arrangements are subject to approval and may be modified or revoked at any time based on business needs, performance considerations, or regulatory requirements.
This position may be responsible for maintaining the security and integrity of critical infrastructure, as defined in Section 113.001(2) of the Texas Business and Commerce Code and therefore may require routine reviews and screening. The ability to satisfy and maintain all requirements necessary to ensure the continued security and integrity of such infrastructure is a condition of hire and continued employment.
It is the policy of The University of Texas MD Anderson Cancer Center to provide equal employment opportunity without regard to race, color, religion, age, national origin, sex, gender, sexual orientation, gender identity/expression, disability, protected veteran status, genetic information, or any other basis protected by institutional policy or by federal, state or local laws unless such distinction is required by law. http://www.mdanderson.org/about-us/legal-and-policy/legal-statements/eeo-affirmative-action.html

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