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Battery Research Phd Jobs in Decatur, GA (NOW HIRING)

Battery Research Phd information

What are some common challenges faced by Battery Research PhDs when transitioning from academia to industry roles?

Battery Research PhDs often encounter challenges adapting to the faster-paced, results-oriented environment of industry compared to academia. In industry, there is a greater emphasis on meeting project deadlines, working collaboratively in multidisciplinary teams, and aligning research with commercial objectives. Additionally, clear communication of complex scientific findings to non-specialist stakeholders is frequently required. Understanding intellectual property considerations and scalability of research are also key aspects that differ from academic settings.

What are the key skills and qualifications needed to thrive as a Battery Research PhD, and why are they important?

To thrive as a Battery Research PhD, you need an advanced degree in materials science, chemistry, or a related field, with deep expertise in electrochemistry and battery technology. Proficiency in analytical instruments (such as XRD, SEM, and electrochemical workstations), data analysis software, and safety protocols is typically required. Strong problem-solving skills, attention to detail, and the ability to communicate complex ideas clearly are crucial soft skills. These competencies are vital for advancing battery innovation, ensuring rigorous research, and effectively collaborating within multidisciplinary teams.

What is the difference between Battery Research Phd vs Battery Engineer?

AspectBattery Research PhdBattery Engineer
Required CredentialsPhD in Materials Science, Chemistry, or related fieldBachelor's or Master's in Engineering, Materials Science, or related field
Work EnvironmentResearch labs, academia, corporate R&DProduct development, manufacturing, testing facilities
Industry UsageFocus on fundamental research and innovationFocus on product design, testing, and implementation

While both roles involve working with batteries, a Battery Research Phd primarily conducts fundamental research to develop new materials and technologies, often in academic or R&D settings. In contrast, a Battery Engineer applies engineering principles to design, test, and improve battery products for commercial use. Both roles require a strong understanding of battery technology but differ in focus and work environment.

What does a Battery Research PhD do?

A Battery Research PhD conducts advanced research to develop and improve battery technologies, such as lithium-ion or solid-state batteries. This work often involves designing experiments, analyzing materials, and publishing findings in scientific journals. Battery researchers may work in academic, government, or industry labs, and their research contributes to advancements in energy storage for applications like electric vehicles, renewable energy, and electronics. They also collaborate with interdisciplinary teams to solve complex problems related to battery performance, safety, and sustainability.
What are popular job titles related to Battery Research Phd jobs in Decatur, GA? For Battery Research Phd jobs in Decatur, GA, the most frequently searched job titles are:
What cities near Decatur, GA are hiring for Battery Research Phd jobs? Cities near Decatur, GA with the most Battery Research Phd job openings:

Senior Researcher / Senior Engineer - 5G/6G Industrial IoT and Wireless Network Systems

Optimal Inc.

Embry Hills, GA • On-site

$103K - $141K/yr

Contractor

Posted 10 days ago


Job description

Senior Researcher / Senior Engineer - Next-Generation Wireless Precision Sensors

Role Summary
We are seeking a Senior Researcher / Senior Engineer to lead development of next-generation wireless sensing solutions for Future Factory manufacturing systems. This role will focus on high-precision, machine-attachable sensors that can operate in industrial environments and communicate over emerging 5G and 6G networks. The successful candidate will define sensing architectures for manufacturing equipment, prototype and validate high-resolution wireless sensors, and enable real-time data capture for AI-driven process monitoring, quality prediction, and closed-loop optimization.
The ideal candidate combines deep expertise in precision sensing hardware with strong understanding of manufacturing environments, sensor integration constraints, signal quality, and industrial deployment.

What You'll Do
Lead development of wireless sensing concepts for manufacturing equipment and test systems, with emphasis on high precision, robustness, and ease of attachment to existing machines
Define sensing strategies for displacement measurement in the 1-5 micron range, force sensing at Newton-level resolution, acoustic sensing for engine and equipment monitoring, and related high-fidelity industrial measurements
Evaluate and develop sensor technologies such as MEMS-based sensors, piezoelectric sensors, optical or laser displacement sensors, strain-based force sensors, acoustic and ultrasonic sensors, vibration sensors, temperature sensors, and hybrid multi-modal sensing packages
Architect compact, low-power, ruggedized sensor nodes suitable for harsh manufacturing environments including vibration, heat, EMI, oil, dust, and cycle-to-cycle variation
Design and validate sensor packaging, mounting strategies, calibration methods, drift compensation methods, and signal-conditioning approaches for factory deployment
Partner with controls, manufacturing, automation, and AI teams to ensure the sensor outputs are suitable for downstream real-time analytics and digital twin applications
Conduct laboratory and plant-floor experiments to benchmark resolution, repeatability, latency, reliability, battery life, and wireless performance
Develop technical roadmaps for next-generation industrial sensing aligned to 5G/6G connectivity and Future Factory requirements
Support supplier engagement, prototype builds, test plans, technical reviews, and technology down-selection

Required Qualifications
Master's degree or PhD in Electrical Engineering, Mechanical Engineering, Materials Engineering, Applied Physics, Mechatronics, Robotics, or a related field
5+ years of industrial or applied research experience in precision sensors, instrumentation, industrial measurement systems, or smart connected devices

Demonstrated expertise in one or more of the following:

  • Precision displacement sensing
  • Force or strain measurement
  • Acoustic or vibration sensing
  • Industrial instrumentation
  • MEMS sensor systems
  • Wireless embedded sensing


Strong understanding of sensor physics, signal conditioning, noise reduction, calibration, uncertainty analysis, and measurement-system design
Experience developing hardware for industrial or automotive environments
Hands-on experience with data acquisition systems, embedded electronics, sensor interfaces, and experimental validation
Ability to translate manufacturing problems into measurable sensing requirements and deployable hardware solutions
Strong written and verbal communication skills with the ability to work across research, engineering, manufacturing, and supplier teams

Preferred Qualifications
PhD with specialization in advanced sensors, wireless sensing, or industrial instrumentation
Experience with 5G, private wireless networks, ultra-reliable low-latency communications, or edge-connected sensor platforms
Experience with battery-powered or energy-efficient wireless sensor nodes
Familiarity with OPC UA, MQTT, industrial Ethernet, TSN, or edge-to-cloud telemetry frameworks
Experience with sensor fusion, anomaly detection, or AI/ML workflows for industrial process monitoring
Experience in automotive manufacturing, engine testing, welding, casting, assembly, or end-of-line validation
Experience with rugged product design, EMI/EMC considerations, and design-for-manufacturability

Key Skills and Competencies
Precision sensing and instrumentation
Wireless sensor architecture
Embedded hardware development
Signal processing and calibration
Experimental design and validation
Industrial deployment and machine integration
Cross-functional technical leadership
Supplier and prototype management


Success Profile
A strong candidate for this role will be able to take a manufacturing measurement challenge, identify the right sensing mechanism, design a wireless industrial sensor architecture, validate precision and robustness, and create a path toward scalable deployment in a connected factory environment.